DATA SCIENCE CERTIFICATION AUTHORITIES

Data Science Course Features

DATA SCIENCE LEAD MENTORS

DATA SCIENCE COURSE FEE IN UDAIPUR, INDIA

Live Virtual

Instructor Led Live Online

110,000
59,451

  • IABAC® & NASSCOM® Certification
  • 8-Month | 700 Learning Hours
  • 120-Hour Live Online Training
  • 25 Capstone & 1 Client Project
  • 365 Days Flexi Pass + Cloud Lab
  • Internship + Job Assistance

Blended Learning

Self Learning + Live Mentoring

66,000
34,951

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

Classroom

In - Person Classroom Training

110,000
64,451

  • IABAC® & NASSCOM® Certification
  • 8-Month | 700 Learning Hours
  • 120-Hour Classroom Sessions
  • 25 Capstone & 1 Client Project
  • Cloud Lab Access
  • Internship + Job Assistance

ARE YOU LOOKING TO UPSKILL YOUR TEAM ?

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UPCOMING DATA SCIENCE ONLINE CLASSES IN UDAIPUR

BEST DATA SCIENCE 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 DATA SCIENCE COURSE

Why DataMites Infographic

SYLLABUS OF DATA SCIENCE COURSE IN UDAIPUR

MODULE 1: DATA SCIENCE ESSENTIALS 

 • Introduction to Data Science
 • Evolution of Data Science
 • Big Data Vs Data Science
 • Data Science Terminologies
 • Data Science vs AI/Machine Learning
 • Data Science vs Analytics

MODULE 2: DATA SCIENCE DEMO

 • Business Requirement: Use Case
 • Data Preparation
 • Machine learning Model building
 • Prediction with ML model
 • Delivering Business Value.

MODULE 3: ANALYTICS CLASSIFICATION 

 • Types of Analytics
 • Descriptive Analytics
 • Diagnostic Analytics
 • Predictive Analytics
 • Prescriptive Analytics
 • EDA and insight gathering demo in Tableau

MODULE 4: DATA SCIENCE AND RELATED FIELDS

 • Introduction to AI
 • Introduction to Computer Vision
 • Introduction to Natural Language Processing
 • Introduction to Reinforcement Learning
 • Introduction to GAN
 • Introduction to Generative Passive Models

MODULE 5: DATA SCIENCE ROLES & WORKFLOW

 • Data Science Project workflow
 • Roles: Data Engineer, Data Scientist, ML Engineer and MLOps Engineer
 • Data Science Project stages.

MODULE 6: MACHINE LEARNING INTRODUCTION

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

MODULE 7: DATA SCIENCE INDUSTRY APPLICATIONS

 • Data Science in Finance and Banking
 • Data Science in Retail
 • Data Science in Health Care
 • Data Science in Logistics and Supply Chain
 • Data Science in Technology Industry
 • Data Science in Manufacturing
 • Data Science in Agriculture

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
 • Empirical 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 REGRESSSION

 • 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
 • Self Join, Cross join
 • Windows function: 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

OFFERED DATA SCIENCE COURSES IN UDAIPUR

DATA SCIENCE COURSE REVIEWS

ABOUT DATA SCIENTIST TRAINING IN UDAIPUR

DataMites has established itself as a leading institution, offering top-tier Data Science online courses in Udaipur, tailored to meet the increasing demand for data science professionals in this vibrant city. Our comprehensive curriculum covers essential domains such as artificial intelligence, machine learning, data analytics, and deep learning. For those seeking flexibility, we also provide on-demand offline classes in Udaipur, allowing students to learn at their own pace. The course duration is eight months, encompassing 700 hours of in-depth learning alongside 120 hours of live online training conducted by industry experts.

DataMites Data Science courses are accredited by prestigious organizations like IABAC and NASSCOM FutureSkills, ensuring both credibility and relevance in the marketplace. We offer multiple certification opportunities to further bolster your qualifications in this rapidly evolving field. With a strong emphasis on practical experience, our programs include internships and job placement assistance, equipping students with invaluable real-world insights and facilitating significant career opportunities. Enroll in our Certified Data Scientist Course in Udaipur to elevate your skills and enhance your career trajectory.

Data science is transforming industries globally by enabling data-driven decision-making and uncovering valuable business insights. In response to this growing need, DataMites provides an extensive online Data analyst  and  Data Science certification in Udaipur, designed to equip individuals with the essential skills required for success in this field. Our expert-led training ensures a solid theoretical foundation, combined with practical experience, preparing participants for a plethora of opportunities in this rapidly expanding sector.

Three-Phase Data Science Learning at DataMites in Udaipur:

Phase 1: Pre-Course Self-Study
Kickstart your learning journey with high-quality video content and self-paced modules that build a strong foundation in data science concepts at your convenience.

Phase 2: Interactive Training
Engage in immersive online training sessions for 20 hours each week over three months. The program delves into current industry trends, real-world projects, and interactive sessions led by seasoned experts, ensuring a well-rounded learning experience.

Phase 3: Internship + Placement Assistance
Gain practical experience through 25 Capstone Projects and a client project during your internship. Our dedicated Placement Assistance Team will guide you in identifying suitable career opportunities, enhancing your employability through real-world exposure and recognized certifications.

Why Pursue a Data Science Course in Udaipur?

Udaipur, a picturesque city in Rajasthan, is rapidly emerging as a significant hub for technology and education. As industries in the region increasingly adopt data science, artificial intelligence, and machine learning, the demand for skilled professionals is on the rise, making Udaipur an attractive destination for those seeking careers in these innovative fields.

Compared to major IT centers in Rajasthan, Udaipur offers a strategic location that provides access to opportunities in tech-driven industries while fostering a burgeoning local tech ecosystem.

The salary potential for data scientists in India is promising, with an average annual income of INR 13,80,000. In comparison, data scientists in nearby tech hubs like Jaipur earn an average of INR 7,43,682 per year. According to the "Data Science Global Impact Report 2024" by IDC, the global data science market is anticipated to grow at a compound annual growth rate (CAGR) of 27% from 2024 to 2028, fueled by the increasing demand for data-driven strategies across various sectors. This growth trajectory presents a valuable opportunity for data science professionals, positioning Udaipur to leverage this potential.

DataMites data science training institute in Udaipur covers the entire spectrum of data science, from foundational concepts to advanced applications, ensuring you are well-prepared for the job market. Our comprehensive curriculum includes study materials, mock tests, and extensive job training, equipping you with the essential tools for success.

Why Choose DataMites for Data Science Training in Udaipur?

Opting for DataMites for your Data Science training in Udaipur provides unparalleled advantages. With globally recognized certifications from IABAC and NASSCOM FutureSkills, you will gain a competitive edge in the job market. Our hands-on learning approach, featuring 25 real-world capstone and client projects, ensures practical experience that significantly enhances employability. Coupled with valuable internships, comprehensive learning resources, and dedicated placement support, DataMites offers a holistic platform for advancing your career in the data science industry.

By enrolling in the DataMites Data Science Course with internship and placement in Udaipur, you are making a strategic investment in a high-growth, lucrative career. Our curriculum seamlessly blends theoretical knowledge with practical experience, ensuring you are fully equipped to excel in the industry.

Seize the opportunity to learn from industry experts and gain hands-on experience through our extensive Python course and data science online training in Udaipur. With flexible learning options, robust placement support, and a commitment to excellence, DataMites is dedicated to your success in this rapidly evolving field. Operating in over 13 cities, including Bangalore, Pune, and Mumbai, DataMites is committed to providing exceptional education and career growth opportunities. Join our thriving community of data science professionals and embark on your journey today!

If you are looking only offline data science course in Rajasthan, you can contact Datamites Jaipur Centre.

ABOUT DATAMITES DATA SCIENCE COURSE IN UDAIPUR

A career in data science doesn't hinge on specific qualifications. While knowledge in math, statistics, or computer science is helpful, people from various educational backgrounds can succeed. Key factors include having the right skills, hands-on experience, and a genuine passion for leveraging data to solve problems.

Data science courses in Udaipur usually range from a 4 to 12 months, depending on the program's depth and structure.

Starting salaries for data scientists in Udaipur generally range from INR 3 to INR 8 lakhs per annum, depending on skills and the employer.

Data science has significant scope in Udaipur, with increasing demand across sectors such as finance, healthcare, and retail.

When looking for a reliable data science course in Udaipur, focus on institutions that offer comprehensive training, placement assistance, and hands-on projects. DataMites is a reputable option, providing a data science course that includes live projects, internships, and strong placement support, along with certification.

Proficiency in coding is not strictly essential for a career in data science. However, having coding skills can be advantageous, as data scientists frequently use languages like Python and R for data analysis. Understanding programming can enhance your ability to work with data effectively.

Yes, individuals from diverse educational backgrounds, such as mathematics, statistics, and economics, can pursue a career in data science.

A data science course teaches the skills needed to analyze, interpret, and extract insights from large datasets. It covers topics like statistics, programming (often Python or R), machine learning, and data visualization. Students also learn how to clean data, build predictive models, and communicate findings effectively.

A data scientist analyzes complex data to help organizations make data-driven decisions, often involving data collection, analysis, and visualization.

To study data science effectively in Udaipur, combine structured learning with practical experience through hands-on projects and real-world case studies. Institutions like Datamites provide comprehensive courses that include live projects, internships, and strong placement support. We also offer offline courses in major cities such as Bangalore, Mumbai, Chennai, and Pune.

A career in data science requires a blend of skills, including statistical analysis, programming, and data visualization. Proficiency in machine learning and strong problem-solving abilities are also essential. These skills enable professionals to effectively analyze and interpret complex data.

Yes, data science jobs remain in high demand across various industries as organizations increasingly rely on data for decision-making.

Data scientists are responsible for collecting and analyzing data, building predictive models, and communicating findings to stakeholders.

Statistical knowledge is crucial, as it underpins the methods used for data analysis and model building in data science.

Key steps include defining the problem, data collection, data cleaning, exploratory analysis, modeling, and presenting results.

While not mandatory, prior programming experience can significantly benefit your data science career. It helps in understanding coding concepts, working with data manipulation, and applying algorithms more efficiently, giving you a strong foundation to build on.

Industries such as finance, healthcare, e-commerce, and technology are increasingly leveraging data science for insights and optimization.

Data scientists are commonly hired by tech firms, financial institutions, healthcare organizations, and consulting agencies.

Popular libraries and tools include Pandas, NumPy, scikit-learn, TensorFlow, and visualization tools like Matplotlib and Seaborn.

Staying informed can be achieved through online courses, webinars, following industry blogs, and participating in data science communities.

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FAQ’S OF DATA SCIENCE TRAINING IN UDAIPUR

You can register for the DataMites Data Science course by visiting our website and filling out the registration form or by contacting our support team for assistance.

Our Data Science course in Udaipur offers comprehensive hands-on learning through 25 capstone projects and 1 client project. This structure ensures that participants gain practical experience, enhancing their skills for real-world applications.

Upon enrollment, you will receive comprehensive study materials, including online resources, course notes, and access to our learning management system.

Upon completing the Data Science course at DataMites in Udaipur, you will receive certifications from IABAC® and NASSCOM® FutureSkills certification. These credentials validate your data science expertise and enhance your employability in this rapidly growing field.

Yes, DataMites offers dedicated placement support to assist you in finding suitable job opportunities after completing the course.

Yes, our course includes internship opportunities to help you gain practical experience in the field of data science.

At DataMites, we provide flexible payment options for our Data Science course to accommodate diverse needs. Our live online training is priced at INR 68,900, while the blended learning option is available for INR 41,900. For more information and updates, please visit our website or contact our support team.

At DataMites, our Data Science course is guided by Ashok Veda, CEO of Rubixe, who shares essential industry insights. Our trainers, with their vast experience in data science and analytics, ensure a balanced mix of theory and practical application. This thorough approach ensures our training aligns with current industry standards.

Yes, we offer demo classes to give you a preview of the course and help you make an informed decision.

Yes, if you miss a session, you can access recorded classes and catch up at your convenience.

Refund policies may vary please refer to our terms and conditions or contact our support team for detailed information.

The Flexi-Pass offers 3 months of flexible access to DataMites courses, enabling learners to choose and switch courses based on their needs. This model promotes a personalized learning experience that accommodates various schedules and preferences.

Yes, we offer EMI options to make your learning experience more affordable. Additionally, various payment methods are available, including credit cards, debit cards, and online payment options.

The syllabus covers essential topics in data science, including data analysis, machine learning, and statistical modeling. Detailed syllabus information is available on our website.

To enroll, visit our website, fill out the registration form, choose your preferred batch, and make the payment to secure your spot in the course.

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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