AI CERTIFICATION AUTHORITIES

Artificial Intelligence Course Features

ARTIFICIAL INTELLIGENCE LEAD MENTORS

ARTIFICIAL INTELLIGENCE COURSE FEE IN THRISSUR

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

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UPCOMING AI ONLINE CLASSES IN THRISSUR

BEST ARTIFICIAL INTELLIGENCE CERTIFICATIONS

The entire training includes real-world projects and highly valuable case studies.

IABAC® certification provides global recognition of the relevant skills, thereby opening opportunities across the world.

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WHY DATAMITES INSTITUTE FOR AI COURSE IN THRISSUR

Why DataMites Infographic

SYLLABUS OF AI COURSE IN THRISSUR

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

LIST OF AI COURSES IN THRISSUR

DATAMITES ARTIFICIAL INTELLIGENCE TRAINING REVIEWS

ABOUT ARTIFICIAL INTELLIGENCE TRAINING IN THRISSUR

DataMites is a leading institute for Artificial Intelligence Training, empowering both professionals and students to excel in AI, Data Science, and Machine Learning. With over 100,000 learners trained, DataMites has earned recognition as one of the Top 20 AI training institutes in India by Analytics India Magazine. Our Artificial Intelligence course in Thrissur offers a comprehensive, industry-aligned curriculum, making it a top choice for anyone looking to kickstart their career in AI and Machine Learning.

The Artificial Intelligence Training in Thrissur is meticulously designed to cover all aspects of AI, from data manipulation and visualization to advanced machine learning techniques. This AI Engineer Course is accredited by IABAC and NASSCOM FutureSkills, ensuring that it meets global industry standards. With DataMites, you'll experience a 9-month immersive training program, offered both online and through the ON-DEMAND offline center in Thrissur. This combination of in-person instruction and practical, hands-on learning will provide you with real-world experience, internships, and specialized training tailored to both students and professionals.

Why Choose DataMites for Artificial Intelligence Training in Thrissur?

  1. Global Accreditation: Our Artificial Intelligence Certification in Thrissur is certified by globally recognized institutions like IABAC and NASSCOM FutureSkills.
  2. Expert Faculty: Learn from top professionals and renowned AI specialists, including Ashok Veda, who bring deep industry experience and knowledge.
  3. Flexible Learning Options: Choose between online classes or our ON-DEMAND offline Artificial Intelligence course in Thrissur, offering convenient, flexible learning.
  4. Practical Learning: Our Artificial Intelligence Courses in Thrissur with internships, seamlessly combines academic learning with practical training.
  5. Dedicated Placement Support: DataMites offers Artificial Intelligence courses in Thrissur with placement assistance, ensuring a seamless transition from education to employment.

Innovative 3-Phase Learning Journey at DataMites

  1. Pre-Course Self-Study: Start your Artificial Intelligence course in Thrissur with curated video tutorials and study materials that lay a strong foundation in AI fundamentals.
  2. Immersive Training: Experience a 3-month intensive program with 20 hours of weekly sessions. Choose from live online classes or attend the ON-DEMAND offline Artificial Intelligence course in Thrissur. The curriculum is designed to provide a holistic learning experience through real-world projects, expert mentorship, and industry-relevant content.
  3. Internship & Placement Assistance: Work on 20 capstone projects and one client project to gain a prestigious internship certification. Our Placement Assistance Team (PAT) provides dedicated support, ensuring smooth placement opportunities with leading companies.

Additional Artificial Intelligence Certifications Offered by DataMites

  1. AI for Managers: A specialized program for business leaders to integrate AI into strategic decision-making.
  2. Certified NLP Expert: Explore Natural Language Processing and its applications in AI.
  3. Artificial Intelligence Expert: A comprehensive AI course for beginners and intermediate learners.
  4. Artificial Intelligence Foundation: An introductory program offering a deep dive into AI’s principles and core concepts.

Key Highlights of the Artificial Intelligence Curriculum

The curriculum integrates the AI Expert and Certified Data Scientist (CDS) tracks, offering an extensive syllabus that includes:

  1. Python Programming Fundamentals
  2. Data Science Foundations
  3. Machine Learning Expertise
  4. Advanced Data Science Techniques
  5. Big Data Foundations
  6. SQL and MongoDB Databases
  7. Artificial Intelligence Foundations
  8. Business Intelligence Analysis
  9. Version Control with Git

This robust curriculum is designed to equip learners with industry-standard tools and techniques, ensuring they excel in the rapidly growing field of AI.

Thrissur – The Cultural Capital of Kerala

Thrissur, a prominent city in Kerala, is not only known for its cultural heritage but also for its significant contributions to education. The city boasts several esteemed educational institutions, including Sree Sankaracharya University of Sanskrit, Christ College, and Government Engineering College, which attract students from across the state and beyond. Thrissur is home to a variety of schools, ranging from CBSE to state syllabus schools, offering quality education. Institutions like the Kerala Kalamandalam, which specializes in traditional arts, make Thrissur a hub for cultural learning. The presence of these educational institutions makes Thrissur an excellent place for students seeking a blend of academic and cultural growth.

Several nearby cities also contribute significantly to the educational landscape of Kerala. Kochi (Cochin), just 85 kilometers away, is another educational hub in the region. The city is home to prestigious institutions such as Cochin University of Science and Technology (CUSAT) and Rajagiri College of Social Sciences, which are known for their academic excellence and research contributions. Kochi also offers a range of international schools and colleges, making it an attractive destination for students seeking higher education.

Palakkad, located about 67 kilometers from Thrissur, also plays a role in Kerala’s education system. The Government Engineering College and NSS College of Engineering are among the notable institutions in the city, along with a variety of schools offering diverse curriculums. Palakkad's proximity to Tamil Nadu adds an inter-state educational dynamic, allowing for cross-cultural exchange and collaboration in academic settings.

Together, Thrissur and its nearby cities like Kochi, Palakkad, and Kottayam offer a comprehensive educational ecosystem, blending traditional arts, modern sciences, and professional training. Whether pursuing higher education, research, or cultural studies, these cities offer diverse opportunities to students.

Artificial Intelligence Career Opportunities in Kerala

Kerala’s tech ecosystem is thriving, especially in cities like Kochi and Thiruvananthapuram, where AI skills are in high demand. Businesses across sectors like healthcare, finance, retail, and logistics are actively looking for skilled AI professionals. Key job roles include:

  1. AI Engineers
  2. Data Scientists
  3. Machine Learning Developers
  4. Automation Specialists
  5. AI Consultants

Prominent companies in Kerala such as Infosys, Tata Elxsi, Oracle Financial Services, HCLTech, and Wipro are contributing to the growing AI industry, creating ample career opportunities for Artificial Intelligence Course in Chennai.

Start Your Artificial Intelligence Journey with DataMites in Thrissur

AI is revolutionizing industries worldwide, offering unprecedented opportunities for innovation. By enrolling in our globally recognized Artificial Intelligence courses in Thrissur, you can position yourself at the forefront of this exciting field. DataMites provides you with the right tools and mentorship to pursue a rewarding career in AI, making this the ideal place to begin your AI journey.

Besides AI, DataMites also offers specialized programs in Python Course, Machine Learning, Deep Learning, IoT, MLOps, Data Engineering, Tableau, Python for Data Science, and Data Analytics, providing learners with diverse career opportunities in the data-driven world.

Begin your Artificial Intelligence training in Thrissur with DataMites and accelerate your career in AI today!

WHY ARTIFICIAL INTELLIGENCE COURSE IN THRISSUR

The most commonly used programming languages in AI development are Python, R, Java, C++, and Julia, with Python being the most popular due to its extensive libraries and ease of use.

An AI course typically covers tools and software like TensorFlow, PyTorch, Scikit-Learn, Keras, OpenCV, NLTK, Jupyter Notebook, and cloud platforms like AWS, Google Cloud, and Azure.

After completing an Artificial Intelligence course, career options include AI Engineer, Machine Learning Engineer, Data Scientist, NLP Engineer, Computer Vision Specialist, and AI Researcher across various industries.

The cost of an Artificial Intelligence course in Thrissur varies depending on the course. Similarly, in Thrissur, AI course fees range from ₹30,000 to ₹1,70,000, based on the course level and duration.

DataMites in Thrissur provides the most comprehensive Artificial Intelligence course that is designed as per the current industry requirements. Also, the Artificial Intelligence course provided by DataMites in Thrissur is certified in collaboration with IABAC.

The Artificial Intelligence job market in Thrissur is expanding, with numerous opportunities across various industries. This growth indicates a rising demand for AI professionals in the region.

Computer vision in Artificial Intelligence enables machines to interpret and analyze visual data from images and videos, powering applications like facial recognition, object detection, autonomous vehicles, and medical imaging.

Common misconceptions about Artificial Intelligence include the belief that AI can think like humans, will replace all jobs, is infallible, lacks ethical concerns, and is only for tech experts.

Artificial Intelligence has the greatest impact in healthcare, finance, retail, manufacturing, transportation, cybersecurity, and entertainment, revolutionizing efficiency, automation, and decision-making.

The salary range for AI Engineers in India varies from ₹3-7 lakhs per annum for entry-level, ₹7-13 lakhs for mid-level, and ₹13-21 lakhs for senior-level professionals, depending on experience and expertise.

The potential for Artificial Intelligence in Thrissur is significant, highlighted by the establishment of Kerala's first robotics park in the city, aiming to boost innovation and growth in AI.

Yes, a fresher can enroll in an Artificial Intelligence course in Thrissur, as institutes offer beginner-friendly programs covering fundamental AI concepts, programming, and hands-on projects.

Machine Learning is a subset of Artificial Intelligence that enables systems to learn from data, identify patterns, and make decisions without explicit programming.

Artificial Intelligence benefits businesses by automating processes, enhancing decision-making, improving customer experiences, optimizing operations, and driving innovation across various industries.

Anyone with an interest in technology, including students, working professionals, and entrepreneurs, can learn AI & ML courses in Thrissur, as many institutes offer programs for beginners and advanced learners.

The duration of an Artificial Intelligence course in Thrissur ranges from 1 month to 1 year, depending on the course curriculum and level of study.

Yes, a working professional in Thrissur can pursue an AI course, as many institutes offer flexible learning options, including online classes, weekend batches, and self-paced programs.

The future of AI in Kerala and India is promising, with growing opportunities in sectors like healthcare, finance, retail, manufacturing, and smart cities, driven by government initiatives, startups, and increasing AI adoption across industries.

Learning Artificial Intelligence in Thrissur can be challenging but achievable, as institutes offer structured courses with hands-on training, mentorship, and flexible learning options to support beginners and professionals.

To find the best institute for an AI course in Thrissur, research accredited institutions, check course curriculum, faculty expertise, student reviews, hands-on training opportunities, placement support, and flexible learning options.

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FAQ’S OF DATAMITES AI TRAINING IN THRISSUR

Upon completing the Artificial Intelligence course at DataMites in Thrissur, participants receive globally recognized certifications from the International Association of Business Analytics Certifications (IABAC), validating their expertise in AI.

DataMites is a top choice for AI courses in Thrissur due to its industry-recognized certification, expert faculty, hands-on training with live projects, flexible learning options, and strong placement assistance. DataMites has been recognized as one of the Top 20 AI training institutes in India by Analytics India Magazine.

Yes, the DataMites AI course in Thrissur includes internships, providing hands-on experience with real-world projects to help students gain practical AI skills.

Yes, DataMites provides class recordings and rescheduling options, allowing students to make up for missed AI course sessions.

The AI course at DataMites in Thrissur equips you with skills in machine learning, deep learning, natural language processing (NLP), computer vision, Python programming, data science, and AI model deployment.

 DataMites provides Flexi Pass, which gives you the privilege to attend unlimited batches in a year. The Flexi Pass is specific to one particular course. Therefore if you have a Flexi pass for a particular course of your choice, you will be able to attend any number of sessions of that course. It is to be noted that a Flexi pass is valid for a particular period.

Yes, DataMites offers EMI options for AI courses in Thrissur, making it easier for students and professionals to manage their course fees.

Yes, DataMites offers a trial class before enrollment, allowing you to experience the teaching style and course structure before joining the AI course.

DataMites offers an online Artificial Intelligence course in Thrissur at a cost of  Rs 50,000 to 1,54,000/-

The instructors for the DataMites AI course in Thrissur are experienced industry professionals and AI experts with extensive knowledge in machine learning, deep learning, and data science.

Yes, DataMites offers AI certification along with live projects in Thrissur, providing hands-on experience and practical exposure to real-world AI applications.

The duration of DataMites Artificial Intelligence courses in Thrissur varies depending on the specific program, ranging from 2 months for the Artificial Intelligence Expert course to 9 months for the Artificial Intelligence Engineer course.

Yes, DataMites provides placement assistance after the AI course in Thrissur, including job support, resume building, and interview preparation.

The registrations cancelled within 48 hrs of enrollment will be refunded in full. The processing time of the refund is within 30 days, from the date of the receipt of the cancellation request.

DataMites provides study materials, hands-on projects, case studies, practice exams, and access to online learning resources in their AI course in Thrissur.

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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