ARTIFICIAL INTELLIGENCE CERTIFICATION AUTHORITIES

Artificial Intelligence Course Features

ARTIFICIAL INTELLIGENCE COURSE LEAD MENTORS

ARTIFICIAL INTELLIGENCE COURSE FEE IN NAVRANGPURA, AHMEDABAD

Live Virtual

Instructor Led Live Online

154,000
81,900

  • IABAC® & DMC Certification
  • 9-Month | 780 Learning Hours
  • 100-Hour Live Online Training
  • 10 Capstone & 1 Client Project
  • 365 Days Flexi Pass + Cloud Lab
  • Internship + Job Assistance

Blended Learning

Self Learning + Live Mentoring

92,000
57,900

  • Self Learning + Live Mentoring
  • IABAC® & DMC Certification
  • 1 Year Access To Elearning
  • 10 Capstone & 1 Client Project
  • Job Assistance
  • 24*7 Learner assistance and support

Classroom

In - Person Classroom Training

154,000
86,900

  • IABAC® & DMC Certification
  • 9-Month | 780 Learning Hours
  • 100-Hour Classroom Sessions
  • 10 Capstone & 1 Client Project
  • Cloud Lab Access
  • Internship + Job Assistance

Financing Options

We are dedicated to making our programs accessible. We are committed to helping you find a way to budget for this program and offer a variety of financing options to make it more economical.
Pay In Installments, as low as
We have partnered with the following financing companies to provide competitive finance options at as low as
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Admission Closes On : 31st October 2025

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SYLLABUS OF ARTIFICIAL INTELLIGENCE CERTIFICATION COURSE

MODULE 1 : ARTIFICIAL INTELLIGENCE OVERVIEW 

• Evolution Of Human Intelligence
• What Is Artificial Intelligence?
• History Of Artificial Intelligence
• Why Artificial Intelligence Now?
• Areas Of Artificial Intelligence
• AI Vs Data Science Vs Machine Learning

MODULE 2 :  DEEP LEARNING INTRODUCTION

• Deep Neural Network
• Machine Learning vs Deep Learning
• Feature Learning in Deep Networks
• Applications of Deep Learning Networks

MODULE3 : TENSORFLOW FOUNDATION

• TensorFlow Structure and Modules
• Hands-On:ML modeling with TensorFlow

MODULE 4 : COMPUTER VISION INTRODUCTION

• Image Basics
• Convolution Neural Network (CNN)
• Image Classification with CNN
• Hands-On: Cat vs Dogs Classification with CNN Network

MODULE 5 : NATURAL LANGUAGE PROCESSING (NLP)

• NLP Introduction
• Bag of Words Models
• Word Embedding
• Hands-On:BERT Algorithm

MODULE 6 : AI ETHICAL ISSUES AND CONCERNS

• Issues And Concerns Around Ai
• Ai And Ethical Concerns
• Ai And Bias
• Ai:Ethics, Bias, And Trust

MODULE 1 : PYTHON BASICS 

 • Introduction of python
 • Installation of Python and IDE
 • Python Variables
 • Python basic data types
 • Number & Booleans, strings
 • Arithmetic Operators
 • Comparison Operators
 • Assignment Operators

MODULE 2 : PYTHON CONTROL STATEMENTS 

 • IF Conditional statement
 • IF-ELSE
 • NESTED IF
 • Python Loops basics
 • WHILE Statement
 • FOR statements
 • BREAK and CONTINUE statements

MODULE 3 : PYTHON DATA STRUCTURES 

 • Basic data structure in python
 • Basics of List
 • List: Object, methods
 • Tuple: Object, methods
 • Sets: Object, methods
 • Dictionary: Object, methods

MODULE 4 : PYTHON FUNCTIONS 

 • Functions basics
 • Function Parameter passing
 • Lambda functions
 • Map, reduce, filter functions

MODULE 1 : OVERVIEW OF STATISTICS 

 • Introduction to Statistics
 • Descriptive And Inferential Statistics
 • Basic Terms Of Statistics
 • Types Of Data

MODULE 2 : HARNESSING DATA 

 • Random Sampling
 • Sampling With Replacement And Without Replacement
 • Cochran's Minimum Sample Size
 • Types of Sampling
 • Simple Random Sampling
 • Stratified Random Sampling
 • Cluster Random Sampling
 • Systematic Random Sampling
 • Multi stage Sampling
 • Sampling Error
 • Methods Of Collecting Data

MODULE 3 : EXPLORATORY DATA ANALYSIS 

 • Exploratory Data Analysis Introduction
 • Measures Of Central Tendencies: Mean,Median And Mode
 • Measures Of Central Tendencies: Range, Variance And Standard Deviation
 • Data Distribution Plot: Histogram
 • Normal Distribution & Properties
 • Z Value / Standard Value
 • Empherical Rule and Outliers
 • Central Limit Theorem
 • Normality Testing
 • Skewness & Kurtosis
 • Measures Of Distance: Euclidean, Manhattan And Minkowski Distance
 • Covariance & Correlation

MODULE 4 : HYPOTHESIS TESTING 

 • Hypothesis Testing Introduction
 • P- Value, Critical Region
 • Types of Hypothesis Testing
 • Hypothesis Testing Errors : Type I And Type II
 • Two Sample Independent T-test
 • Two Sample Relation T-test
 • One Way Anova Test
 • Application of Hypothesis testing

MODULE 1: MACHINE LEARNING INTRODUCTION 

 • What Is ML? ML Vs AI
 • Clustering, Classification And Regression
 • Supervised Vs Unsupervised

MODULE 2: PYTHON NUMPY  PACKAGE 

• Introduction to Numpy Package
 • Array as Data Structure
 • Core Numpy functions
 • Matrix Operations, Broadcasting in Arrays

MODULE 3: PYTHON PANDAS PACKAGE

 • Introduction to Pandas package
 • Series in Pandas
 • Data Frame in Pandas
 • File Reading in Pandas
 • Data munging with Pandas

MODULE 4:  VISUALIZATION WITH PYTHON - Matplotlib 

 • Visualization Packages (Matplotlib)
 • Components Of A Plot, Sub-Plots
 • Basic Plots: Line, Bar, Pie, Scatter

MODULE 5: PYTHON VISUALIZATION PACKAGE - SEABORN

 • Seaborn: Basic Plot
 • Advanced Python Data Visualizations

MODULE 6: ML ALGO: LINEAR REGRESSION

 • Introduction to Linear Regression
 • How it works: Regression and Best Fit Line
 • Modeling and Evaluation in Python

MODULE 7: ML ALGO: LOGISTIC REGRESSION 

 • Introduction to Logistic Regression
 • How it works: Classification & Sigmoid Curve
 • Modeling and Evaluation in Python

MODULE 8: ML ALGO: K MEANS CLUSTERING

 • Understanding Clustering (Unsupervised)
 • K Means Algorithm
 • How it works : K Means theory
 • Modeling in Python

MODULE 9: ML ALGO: KNN

 • Introduction to KNN
 • How It Works: Nearest Neighbor Concept
 • Modeling and Evaluation in Python

MODULE 1:  FEATURE ENGINEERING 

 • Introduction to Feature Engineering
 • Feature Engineering Techniques: Encoding, Scaling, Data Transformation
 • Handling Missing values, handling outliers
 • Creation of Pipeline
 • Use case for feature engineering

MODULE 2: ML ALGO: SUPPORT VECTOR MACHINE (SVM)

 • Introduction to SVM
 • How It Works: SVM Concept, Kernel Trick
 • Modeling and Evaluation of SVM in Python

MODULE 3: PRINCIPAL COMPONENT ANALYSIS (PCA)

 • Building Blocks Of PCA
 • How it works: Finding Principal Components
 • Modeling PCA in Python

MODULE 4: ML ALGO: DECISION TREE 

 • Introduction to Decision Tree & Random Forest
 • How it works
 • Modeling and Evaluation in Python

MODULE 5: ENSEMBLE TECHNIQUES - BAGGING

 • Introduction to Ensemble technique 
 • Bagging and How it works
 • Modeling and Evaluation in Python

MODULE 6: ML ALGO: NAÏVE BAYES

 • Introduction to Naive Bayes
 • How it works: Bayes' Theorem
 • Naive Bayes For Text Classification
 • Modeling and Evaluation in Python

MODULE 7:  GRADIENT BOOSTING, XGBOOST 

 • Introduction to Boosting and XGBoost
 • How it works?
 • Modeling and Evaluation of in Python

MODULE 1: TIME SERIES FORECASTING - ARIMA 

 • What is Time Series?
 • Trend, Seasonality, cyclical and random
 • Stationarity of Time Series
 • Autoregressive Model (AR)
 • Moving Average Model (MA)
 • ARIMA Model
 • Autocorrelation and AIC
 • Time Series Analysis in Python

MODULE 2:  SENTIMENT ANALYSIS

 • Introduction to Sentiment Analysis
 • NLTK Package
 • Case study: Sentiment Analysis on Movie Reviews

MODULE 3:  REGULAR EXPRESSIONS WITH PYTHON 

 • Regex Introduction
 • Regex codes
 • Text extraction with Python Regex

MODULE 4: ML MODEL DEPLOYMENT WITH FLASK 

 • Introduction to Flask
 • URL and App routing
 • Flask application – ML Model deployment

MODULE 5: ADVANCED DATA ANALYSIS WITH MS EXCEL 

 • MS Excel core Functions
 • Advanced Functions (VLOOKUP, INDIRECT..)
 • Linear Regression with EXCEL
 • Data Table
 • Goal Seek Analysis
 • Pivot Table
 • Solving Data Equation with EXCEL

MODULE 6:  AWS CLOUD FOR DATA SCIENCE

 • Introduction of cloud
 • Difference between GCC, Azure,AWS
 • AWS Service ( EC2 instance)

MODULE 7: AZURE FOR DATA SCIENCE

 • Introduction to AZURE ML studio
 • Data Pipeline
 • ML modeling with Azure

MODULE 8: INTRODUCTION TO DEEP LEARNING

 • Introduction to Artificial Neural Network, Architecture
 • Artificial Neural Network in Python
 • Introduction to Convolutional Neural Network, Architecture
 • Convolutional Neural Network in Python

MODULE 1: DATABASE INTRODUCTION

 • DATABASE Overview
 • Key concepts of database management
 • Relational Database Management System
 • CRUD operations

 MODULE 2: SQL BASICS

 • Introduction to Databases
 • Introduction to SQL
 • SQL Commands
 • MY SQL workbench installation

MODULE 3: DATA TYPES AND CONSTRAINTS

 • Numeric, Character, date time data type
 • Primary key, Foreign key, Not null
 • Unique, Check, default, Auto increment

MODULE 4: DATABASES AND TABLES (MySQL)

 • Create database
 • Delete database
 • Show and use databases
 • Create table, Rename table
 • Delete table, Delete table records
 • Create new table from existing data types
 • Insert into, Update records
 • Alter table

MODULE 5: SQL JOINS

• Inner join
• Outer join
• Left join
• Right join
• Cross join
• Self join
• Windows functions: Over, Partition , Rank 

MODULE 6: SQL COMMANDS AND CLAUSES

 • Select, Select distinct
 • Aliases, Where clause
 • Relational operators, Logical
 • Between, Order by, In
 • Like, Limit, null/not null, group by
 • Having, Sub queries

 MODULE 7: DOCUMENT DB/NO-SQL DB

 • Introduction of Document DB
 • Document DB vs SQL DB
 • Popular Document DBs
 • MongoDB basics
 • Data format and Key methods

MODULE 1: GIT  INTRODUCTION 

 • Purpose of Version Control
 • Popular Version control tools
 • Git Distribution Version Control
 • Terminologies
 • Git Workflow
 • Git Architecture

MODULE 2: GIT REPOSITORY and GitHub 

 • Git Repo Introduction
 • Create New Repo with Init command
 • Git Essentials: Copy & User Setup
 • Mastering Git and GitHub

MODULE 3: COMMITS, PULL, FETCH AND PUSH 

• Code commits
• Pull, Fetch and conflicts resolution
• Pushing to Remote Repo

MODULE 4: TAGGING, BRANCHING AND MERGING 

• Organize code with branches
• Checkout branch
• Merge branches
• Editing Commits
• Commit command Amend flag
• Git reset and revert

MODULE 5: GIT WITH GITHUB AND BITBUCKET 

• Creating GitHub Account
• Local and Remote Repo
• Collaborating with other developers

MODULE 1: BIG DATA INTRODUCTION 

  • Big Data Overview
  • Five Vs of Big Data
  • What is Big Data and Hadoop
  • Introduction to Hadoop
  • Components of Hadoop Ecosystem
  • Big Data Analytics Introduction

MODULE 2: HDFS AND MAP REDUCE 

  • HDFS – Big Data Storage
  • Distributed Processing with Map Reduce
  • Mapping and reducing  stages concepts
  • Key Terms: Output Format, Partitioners, Combiners, Shuffle, and Sort

MODULE 3: PYSPARK FOUNDATION 

  • PySpark Introduction
  • Spark Configuration
  • Resilient distributed datasets (RDD)
  • Working with RDDs in PySpark
  • Aggregating Data with Pair RDDs

MODULE 4: SPARK SQL and HADOOP HIVE 

  • Introducing Spark SQL
  • Spark SQL vs Hadoop Hive

MODULE 1: TABLEAU FUNDAMENTALS 

 • Introduction to Business Intelligence & Introduction to Tableau
 • Interface Tour, Data visualization: Pie chart, Column chart, Bar chart.
 • Bar chart, Tree Map, Line Chart
 • Area chart, Combination Charts, Map
 • Dashboards creation, Quick Filters
 • Create Table Calculations
 • Create Calculated Fields
 • Create Custom Hierarchies

MODULE 2: POWER-BI BASICS 

 • Power BI Introduction 
 • Basics Visualizations
 • Dashboard Creation
 • Basic Data Cleaning
 • Basic DAX FUNCTION

MODULE 3 : DATA TRANSFORMATION TECHNIQUES

 • Exploring Query Editor
 • Data Cleansing and Manipulation:
 • Creating Our Initial Project File
 • Connecting to Our Data Source
 • Editing Rows
 • Changing Data Types
 • Replacing Values

MODULE 4 :  CONNECTING TO VARIOUS DATA SOURCES 

 • Connecting to a CSV File
 • Connecting to a Webpage
 • Extracting Characters
 • Splitting and Merging Columns
 • Creating Conditional Columns
 • Creating Columns from Examples
 • Create Data Model

MODULE 1: NEURAL NETWORKS 

 • Structure of neural networks
 • Neural network - core concepts(Weight initialization)
 • Neural network - core concepts(Optimizer)
 • Neural network - core concepts(Need of activation)
 • Neural network - core concepts(MSE & RMSE)
 • Feed forward algorithm
 • Backpropagation

MODULE 2: IMPLEMENTING DEEP NEURAL NETWORKS 

 • Introduction to neural networks with tf2.X
 • Simple deep learning model in Keras (tf2.X)
 • Building neural network model in TF2.0 for MNIST dataset

MODULE 3: DEEP COMPUTER VISION - IMAGE RECOGNITION

• Convolutional neural networks (CNNs)
• CNNs with Keras-part1
• CNNs with Keras-part2
• Transfer learning in CNN
• Flowers dataset with tf2.X(part-1)
• Flowers dataset with tf2.X(part-2)
• Examining x-ray with CNN model

MODULE 4 : DEEP COMPUTER VISION - OBJECT DETECTION

 • What is Object detection
 • Methods of Object Detections
 • Metrics of Object detection
 • Bounding Box regression
 • labelimg
 • RCNN
 • Fast RCNN
 • Faster RCNN
 • SSD
 • YOLO Implementation
 • Object detection using cv2

MODULE 5: RECURRENT NEURAL NETWORK 

• RNN introduction
• Sequences with RNNs
• Long short-term memory networks(part 1)
• Long short-term memory networks(part 2)
• Bi-directional RNN and LSTM
• Examples of RNN applications

MODULE 6: NATURAL LANGUAGE PROCESSING (NLP)

• Introduction to Natural language processing
• Working with Text file
• Working with pdf file
• Introduction to regex
• Regex part 1
• Regex part 2
• Word Embedding
• RNN model creation
• Transformers and BERT
• Introduction to GPT (Generative Pre-trained Transformer)
• State of art NLP and projects

MODULE 7: PROMPT ENGINEERING

• Introduction to Prompt Engineering
• Understanding the Role of Prompts in AI Systems
• Design Principles for Effective Prompts
• Techniques for Generating and Optimizing Prompts
• Applications of Prompt Engineering in Natural Language Processing

MODULE 8: REINFORCEMENT LEARNING

• Markov decision process
• Fundamental equations in RL
• Model-based method
• Dynamic programming model free methods

MODULE 9: DEEP REINFORCEMENT LEARNING

• Architectures of deep Q learning
• Deep Q learning
• Reinforcement Learning Projects with OpenAI Gym

MODULE 10: Gen AI

• Gan introduction, Core Concepts, and Applications
• Core concepts of GAN
• GAN applications
• Building GAN model with TensorFlow 2.X
• Introduction to GPT (Generative Pre-trained Transformer)
• Building a Question answer bot with the models on Hugging Face

MODULE 11: Gen AI

• Introduction to Autoencoder
• Basic Structure and Components of Autoencoders
• Types of Autoencoders: Vanilla, Denoising, Variational, Sparse, and Convolutional Autoencoders
• Training Autoencoders: Loss Functions, Optimization Techniques
• Applications of Autoencoders: Dimensionality Reduction, Anomaly Detection, Image

OFFERED ARTIFICIAL INTELLIGENCE COURSES IN AHMEDABAD

ARTIFICIAL INTELLIGENCE TRAINING COURSE REVIEWS

ABOUT ARTIFICIAL INTELLIGENCE COURSE IN NAVRANGPURA

The artificial intelligence course in Navrangpura, Ahmedabad, is structured to provide learners with essential skills and practical expertise to succeed in today’s fast-growing AI-driven world. Whether you are a student aiming to build a strong career, a professional seeking to upgrade your skills, or a business owner exploring AI adoption, this course helps you master core AI concepts and their real-world applications.

DataMites brings its renowned artificial intelligence engineer course to Ahmedabad, accredited by IABAC and NASSCOM FutureSkills, ensuring globally recognized training standards. Conducted over nine months, the program is delivered at the DataMites offline center in Navrangpura, combining interactive classroom sessions with practical, project-based learning. Designed for both beginners and professionals, the course includes real-world projects, internship opportunities, and personalized mentorship. With extensive placement assistance, this artificial intelligence course in Ahmedabad equips learners to confidently enter the AI job market.

The demand for AI professionals is growing in Ahmedabad, especially in Navrangpura, with sectors like IT, healthcare, finance, and retail adopting AI solutions. An Artificial Intelligence Course in Navrangpura equips learners with practical skills, industry insights, and career readiness for this expanding field. According to Markets and Markets, the generative AI market is projected to witness rapid expansion, growing from USD 71.36 billion in 2025 to USD 890.59 billion by 2032, registering a CAGR of 43.4% over the forecast period. A key factor fueling this growth is the integration of generative AI into enterprise solutions that enhance productivity and decision-making. Leading platforms such as Microsoft 365 Copilot, Salesforce Einstein GPT, and Adobe Firefly are revolutionizing business operations by embedding AI capabilities within CRMs, design tools, and collaboration systems.

Why Choose DataMites for artificial intelligence training in Navrangpura, Ahmedabad?

When searching for the best artificial intelligence training institute in Navrangpura, DataMites stands out for its blend of quality learning, real-world exposure, and robust career support. Whether you are just starting your AI journey or looking to enhance your expertise, here’s why DataMites is a preferred choice in Ahmedabad:

  1. Internship Opportunities – Apply your learning in real-world scenarios with structured internships that strengthen both your technical skills and professional portfolio.
  2. Comprehensive Placement Support – Benefit from career services that include resume preparation, interview guidance, mock sessions, and direct connections with top hiring partners across Ahmedabad’s growing tech ecosystem.
  3. Live Projects & Case Studies – Gain practical exposure by working on 10 capstone projects and a client-based assignment, mirroring actual industry challenges.
  4. Globally Accredited Certification – Earn an artificial intelligence engineer certification accredited by IABAC® and aligned with NASSCOM FutureSkills standards, ensuring recognition worldwide.
  5. Extensive Curriculum – Master core AI skills such as Python course, machine learning, computer vision, NLP, and deep learning, reinforced through practical assignments.
  6. Flexible Learning Options – Choose between online and offline training at the DataMites center in Navrangpura, Ahmedabad, featuring classroom sessions, interactive labs, and personalized mentoring.
  7. Expert Faculty – Learn directly from experienced AI professionals who bring years of industry expertise into the classroom.

With over 100,000+ learners trained and a strong record of shaping careers, DataMites has built a reputation as a trusted name in AI training. Its artificial intelligence course in Navrangpura offers not just education but a complete roadmap to career success in this dynamic field.

DataMites Offline Center – Navrangpura
The offline artificial intelligence certification in Navrangpura is available at 7th Floor, Manor Maxx, SV Desai Marg, Vasant Vihar, Navrangpura, Ahmedabad, Gujarat 380009

Learners from nearby areas such as Ellis Bridge (380006), Paldi (380007), Ambawadi (380015), Naranpura (380013), Memnagar (380052), Thaltej (380059), Bodakdev (380054), Ashram Road (380009), and CG Road – Chimanlal Girdharlal Road (380009) can conveniently reach the DataMites Navrangpura center, making it an ideal choice for hands-on Artificial Intelligence training in the region.

At our Navrangpura center, you’ll engage in a hands-on learning experience through expert-led classes, industry projects, and personalized career guidance tailored to help you excel in the field of AI.

Artificial Intelligence Course in Navrangpura with Internship
At DataMites, the artificial intelligence course in Navrangpura with internship opportunities integrates in-depth academic knowledge with real-world training. This unique approach allows learners to gain practical exposure in AI, strengthening their skills and preparing them for successful careers in Artificial Intelligence and Machine Learning.

Artificial Intelligence Course in Navrangpura with Placement
DataMites provides an artificial intelligence course in Navrangpura with placement support, ensuring learners transition smoothly from classroom learning to professional roles. Our career-oriented services are aligned with the evolving AI job market, helping participants secure roles in AI and machine learning with confidence. With these offerings, students are fully equipped to tackle industry challenges and thrive in their professional journey.

Navrangpura is one of Ahmedabad’s most vibrant education and technology hubs, making it a prime location to kickstart your AI career. Surrounded by IT firms, startups, and innovation centers, it provides an ideal ecosystem for continuous learning and career development.

Take your first step toward becoming an Artificial Intelligence Engineer. The artificial intelligence course in Ahmedabad combines structured theory, hands-on practice, and industry-driven exposure to give you the competitive edge required in today’s AI-driven world.

The Artificial Intelligence Institute in Ahmedabad is a top choice for anyone serious about building a career in AI, offering industry-relevant training and strong professional development support. Take the first step toward transforming your future by joining DataMites™ Ahmedabad and tapping into the growing opportunities in this high-demand field.

Our programs, including the Data Science course are designed to equip you with the skills to analyze, interpret, and apply data-driven insights across industries. These courses ensure you gain practical expertise and industry-ready knowledge, helping you stand out in a competitive job market.

Build a strong foundation in analytics, tools, and techniques with the Data Analyst course, designed to kickstart your career as a data analyst. Gain practical training and work on real-world projects that prepare you for success in the industry.

ABOUT DATAMITES ARTIFICIAL INTELLIGENCE COURSE IN NAVRANGPURA

Yes, Python is highly recommended as it is the most widely used programming language in AI, supported by libraries such as TensorFlow, Keras, and Scikit-learn.

AI can be challenging due to its vast and evolving nature, but with consistent effort, guided learning, and project-based practice, both beginners and professionals can master it.

Yes, with proper training and hands-on learning, many professionals transition into AI careers successfully, even from non-technical fields such as finance, sales, or operations.

After completing an artificial intelligence course, learners can pursue roles like AI Engineer, Machine Learning Engineer, Data Scientist, NLP Engineer, Computer Vision Specialist, or AI Researcher.

Python is the primary programming language taught, along with R, Java, and C++, as they are widely used in AI and ML development.

Yes, most artificial intelligence training institutes in Navrangpura offer flexible options like weekend classes, evening sessions, and online formats to suit working professionals.

An artificial intelligence engineer works on developing intelligent systems that mimic human intelligence, while a machine learning engineer focuses on creating models that learn and improve from data.

AI plays a vital role in automating processes, improving decision-making, and building intelligent systems. From chatbots to self-driving cars, artificial intelligence is driving innovations that are shaping the future.

Most artificial intelligence courses require a graduation degree in computer science, engineering, mathematics, or related fields. However, entry-level programs are open to graduates from all streams.

Yes, coding knowledge, especially in Python, is highly recommended for effectively developing AI models.

Students, IT professionals, engineers, analysts, and career changers can join artificial intelligence courses in Navrangpura. While prior knowledge of programming is beneficial, many beginner-level courses welcome learners without technical backgrounds.

Typical artificial intelligence courses in Navrangpura cover:

  • Fundamentals of AI & ML

  • Python Programming

  • Data Preprocessing & Analytics

  • Deep Learning & Neural Networks

  • Natural Language Processing (NLP)

  • Computer Vision

  • AI Deployment & Ethics

The best way to learn artificial intelligence in Navrangpura is by enrolling in a structured program that offers theory, hands-on projects, and industry exposure. Complementing training with self-practice on platforms like Kaggle and GitHub can enhance learning.

Popular AI tools include TensorFlow, PyTorch, Scikit-learn, Keras, OpenAI APIs, IBM Watson, Microsoft Azure AI, and Google AI Platform for building, training, and deploying intelligent systems.

Yes. Artificial intelligence courses in Navrangpura are beginner-friendly, starting with the fundamentals and gradually moving to advanced concepts. Most programs also include practical projects for hands-on learning.

Entry-level AI professionals in Ahmedabad earn between INR 4 LPA and INR 6 LPA, while experienced AI engineers can earn anywhere between INR 10 LPA and INR 20 LPA or more, depending on their expertise and job role.

The artificial intelligence course fees in Navrangpura usually range between INR 40,000 and INR 2,00,000, depending on the level of training, curriculum depth, and the institute’s reputation.

Artificial Intelligence courses in Navrangpura typically range from 3 to 6 months for certification programs and 9 to 12 months for advanced diplomas or postgraduate-level courses.

Yes, artificial intelligence roles in Ahmedabad, including Navrangpura, are highly sought after as the city’s tech and business ecosystem grows. Companies across multiple industries are hiring AI engineers, ML experts, and data analysts to drive automation and innovation.

To build a strong career in artificial intelligence, learners should focus on programming (Python, R, Java), mathematics, statistics, machine learning, deep learning, and natural language processing (NLP). Strong analytical abilities, problem-solving skills, and expertise in tools like TensorFlow and PyTorch are also valuable.

The demand for artificial intelligence in Navrangpura, Ahmedabad, is rapidly growing. Industries like IT, healthcare, finance, retail, and education are actively adopting AI solutions, opening up excellent career opportunities for AI engineers, data scientists, and machine learning specialists.

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FAQ'S OF ARTIFICIAL INTELLIGENCE TRAINING IN NAVRANGPURA

The DataMites Flexi Pass gives learners the flexibility to attend sessions for up to three months, revisit missed classes, and manage their training schedule effectively.

DataMites has a transparent refund policy, and students can request refunds within a specified time frame as per the enrollment terms.

Yes. Learners can choose from easy EMI and installment plans to make the course more affordable.

Yes. Many artificial intelligence courses at DataMites Navrangpura include internship opportunities, allowing students to gain real-world industry exposure.

Yes. DataMites offers resume building, interview preparation, and job placement support, helping learners transition smoothly into artificial intelligence careers.

DataMites has a dedicated training center in 7th Floor, Manor Maxx, SV Desai Marg, Vasant Vihar, Navrangpura, Ahmedabad, Gujarat 380009, a prime location well-connected to educational and business hubs of the city.

Yes. DataMites provides offline classroom-based training at the Navrangpura center, along with live online classes for those who prefer remote learning.

The trainers are experienced artificial intelligence and Data Science professionals with strong industry backgrounds. Their mentorship ensures learners acquire practical and career-oriented knowledge.

Learners receive a DataMites course completion certificate along with a globally recognized IABAC® (International Association of Business Analytics Certifications) credential.

Absolutely. DataMites Navrangpura provides real-time projects, case studies, and industry datasets, giving learners practical exposure and confidence to work on AI applications.

The course is open to students, working professionals, engineers, IT experts, data analysts, and career changers. Whether you are a fresher or an experienced professional, the course is designed to suit different learning needs.

Yes. DataMites Navrangpura offers a free trial class so learners can experience the teaching methodology, trainer expertise, and curriculum before enrollment.

DataMites is highly trusted for artificial intelligence training in Navrangpura because of its industry-aligned curriculum, expert trainers, practical projects, global certifications, and career support services. The institute ensures learners gain job-ready AI skills with flexible schedules.

You can begin by enrolling in the DataMites artificial intelligence course in Navrangpura. The course integrates theory with hands-on projects and case studies, ensuring both conceptual understanding and practical expertise. Registration can be done online or directly at the Navrangpura center.

The artificial intelligence course fees in Navrangpura at DataMites range between INR 40,000 to INR 1,50,000, depending on the program selected. Learners enrolling for the DataMites artificial intelligence course in Navrangpura can also benefit from discounts, EMI plans, and flexible payment options, making it easier to pursue AI training without financial stress.

At DataMites Navrangpura, the artificial intelligence course duration ranges from 3 to 9 months, depending on the course level (beginner, advanced, or expert) and the chosen learning mode (classroom, live online, or self-paced).

The DataMites Placement Assistance Team(PAT) facilitates the aspirants in taking all the necessary steps in starting their career in Data Science. Some of the services provided by PAT are: -

  • 1. Job connect
  • 2. Resume Building
  • 3. Mock interview with industry experts
  • 4. Interview questions

The DataMites Placement Assistance Team(PAT) conducts sessions on career mentoring for the aspirants with a view of helping them realize the purpose they have to serve when they step into the corporate world. The students are guided by industry experts about the various possibilities in the Data Science career, this will help the aspirants to draw a clear picture of the career options available. Also, they will be made knowledgeable about the various obstacles they are likely to face as a fresher in the field, and how they can tackle.

No, PAT does not promise a job, but it helps the aspirants to build the required potential needed in landing a career. The aspirants can capitalize on the acquired skills, in the long run, to a successful career in Data Science.

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