DATA ANALYTICS CERTIFICATION AUTHORITIES

COURSE FEATURES

DATA ANALYTICS LEAD MENTORS

DATA ANALYTICS COURSE FEE IN TIRUNELVELI

Live Virtual

Instructor Led Live Online

110,000
61,135

  • IABAC® Certification
  • 6-Month | 200+ Learning Hours
  • 20 HOURS LEARNING A WEEK
  • 10 Capstone & 1 Client Project
  • 365 Days Flexi Pass + Cloud Lab
  • Internship + Job Assistance

Blended Learning

Self Learning + Live Mentoring

55,000
38,477

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

Classroom

In - Person Classroom Training

110,000
66,647

  • IABAC® Certification
  • 6-Month | 200+ Learning Hours
  • 20 HOURS LEARNING A WEEK
  • 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
0% interest rates with no hidden cost.
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Admission Closes On : 11th January 2026

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SYLLABUS OF DATA ANALYTICS CERTIFICATION IN TIRUNELVELI

MODULE 1: DATA ANALYSIS FOUNDATION

• Data Analysis Introduction
• Data Preparation for Analysis
• Common Data Problems
• Various Tools for Data Analysis
• Evolution of Analytics domain

MODULE 2: CLASSIFICATION OF ANALYTICS

• Four types of the Analytics
• Descriptive Analytics
• Diagnostics Analytics
• Predictive Analytics
• Prescriptive Analytics
• Human Input in Various type of Analytics

MODULE 3: CRIP-DM Model

• Introduction to CRIP-DM Model
• Business Understanding
• Data Understanding
• Data Preparation
Modeling, Evaluation, Deploying,Monitoring

MODULE 4: UNIVARIATE DATA ANALYSIS

• Summary statistics -Determines the value’s center and spread.
• Measure of Central Tendencies: Mean, Median and Mode
• Measures of Variability: Range, Interquartile range, Variance and Standard Deviation
• Frequency table -This shows how frequently various values occur.
• Charts -A visual representation of the distribution of values.

MODULE 5: DATA ANALYSIS WITH VISUAL CHARTS

• Line Chart
• Column/Bar Chart
• Waterfall Chart
• Tree Map Chart
• Box Plot

MODULE 6: BI-VARIATE DATA ANALYSIS

• Scatter Plots
• Regression Analysis
• Correlation Coefficients

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 MinkowskiDistance
  • 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: COMPARISION AND CORRELATION ANALYSIS

• Data comparison Introduction,
• Performing Comparison Analysis on Data
• Concept of Correlation
• Calculating Correlation with Excel
• Comparison vs Correlation
• Hands-on case study : Comparison Analysis
• Hands-on case study Correlation Analysis

MODULE 2: VARIANCE AND FREQUENCY ANALYSIS

• Variance Analysis Introduction
• Data Preparation for Variance Analysis
• Performing Variance and Frequency Analysis
• Business use cases for Variance Analysis
• Business use cases for Frequency Analysis

MODULE 3: RANKING ANALYSIS

• Introduction to Ranking Analysis
• Data Preparation for Ranking Analysis
• Performing Ranking Analysis with Excel
• Insights for Ranking Analysis
• Hands-on Case Study: Ranking Analysis

MODULE 4: BREAK EVEN ANALYSIS

• Concept of Breakeven Analysis
• Make or Buy Decision with Break Even
• Preparing Data for Breakeven Analysis
• Hands-on Case Study: Manufacturing

MODULE 5: PARETO (80/20 RULE) ANALSYSIS

• Pareto rule Introduction
• Preparation Data for Pareto Analysis,
• Performing Pareto Analysis on Data
• Insights on Optimizing Operations with Pareto Analysis
• Hands-on case study: Pareto Analysis

MODULE 6: Time Series and Trend Analysis

• Introduction to Time Series Data
• Preparing data for Time Series Analysis
• Types of Trends
• Trend Analysis of the Data with Excel
• Insights from Trend Analysis

MODULE 7: DATA ANALYSIS BUSINESS REPORTING

• Management Information System Introduction
• Various Data Reporting formats
• Creating Data Analysis reports as per the requirements

MODULE 1: DATA ANALYTICS FOUNDATION

• Business Analytics Overview
• Application of Business Analytics
• Benefits of Business Analytics
• Challenges
• Data Sources
• Data Reliability and Validity

MODULE 2: OPTIMIZATION MODELS

• Predictive Analytics with Low Uncertainty;Case Study
• Mathematical Modeling and Decision Modeling
• Product Pricing with Prescriptive Modeling
• Assignment 1 : KERC Inc, Optimum Manufacturing Quantity

MODULE 3: PREDICTIVE ANALYTICS WITH REGRESSION

• Mathematics behind Linear Regression
• Case Study : Sales Promotion Decision with Regression Analysis
• Hands on Regression Modeling in Excel

MODULE 4: DECISION MODELING

• Predictive Analytics with High Uncertainty
• Case Study-Monte Carlo Simulation
• Comparing Decisions in Uncertain Settings
• Trees for Decision Modeling
• Case Study : Supplier Decision Modeling - Kickathlon Sports Retailer

MODULE 1: MACHINE LEARNING INTRODUCTION

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

MODULE 2: ML ALGO: LINEAR REGRESSSION

• Introduction to Linear Regression
• How it works: Regression and Best Fit Line
• Hands-on Linear Regression with ML Tool

MODULE 3: ML ALGO: LOGISTIC REGRESSION

• Introduction to Logistic Regression;
• Classification & Sigmoid Curve
• Hands-on Logistics Regression with ML Tool

MODULE 4: ML ALGO: KNN

• Introduction to KNN; Nearest Neighbor
• Regression with KNN
• Hands-on: KNN with ML Tool

MODULE 5: ML ALGO: K MEANS CLUSTERING

• Understanding Clustering (Unsupervised)
• Introduction to KMeans and How it works
• Hands-on: K Means Clustering

MODULE 6: ML ALGO: DECISION TREE

• Decision Tree and How it works
• Hands-on: Decision Tree with ML Tool

MODULE 7: ML ALGO: SUPPORT VECTOR MACHINE (SVM)

• Introduction to SVM
• How It Works: SVM Concept, Kernel Trick
• Hands-on: SVM with ML Tool

MODULE 8: ARTIFICIAL NEURAL NETWORK (ANN)

• Introduction to ANN, How It Works
• Back propagation, Gradient Descent
• Hands-on: ANN with ML Tool

MODULE 1: DATABASE INTRODUCTION

• DATABASE Overview
• Key concepts of database management
• CRUD Operations
• Relational Database Management System
• RDBMS vs No-SQL (Document DB)

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 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
• MongoDB data management

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 ANALYTICS COURSES IN TIRUNELVELI

DATA ANALYTICS TRAINING REVIEWS

ABOUT DATA ANALYTICS TRAINING IN TIRUNELVELI

DataMites Institute offers a comprehensive and industry aligned Data Analytics Course in Tirunelveli, designed to meet the rising demand for skilled analytics professionals. As data-driven decision-making becomes essential for business success, organizations increasingly seek talent with strong analytical capabilities. With its growing academic ecosystem and increasing digital adoption, Tirunelveli is emerging as a promising destination for analytics-focused career growth.

The Certified Data Analyst Course in Tirunelveli by DataMites  is a structured six-month program accredited by IABAC and NASSCOM FutureSkills, ensuring global recognition and industry relevance. The curriculum covers essential tools and technologies including Python, Excel, SQL, Tableau, Power BI, statistics, and business analytics fundamentals. This well-rounded approach enables learners to build both technical proficiency and business-oriented analytical thinking.

To ensure job readiness, DataMites Institute emphasizes practical learning through 200+ hours of structured training, live instructor-led sessions, hands-on assignments, and real-world projects. Learners gain exposure through capstone projects, a live client project, internship opportunities, resume development, and mock interviews. The data analytics course fees is INR 38,477 for blended learning and INR 66,647 for classroom training, making it suitable for fresh graduates, working professionals, and career switchers in Hubli.

The demand for data analytics professionals is rising across India as organizations adopt data-driven decision-making. Tirunelveli’s growing digital and analytics initiatives are boosting local demand for skilled analysts. Tamil Nadu’s data center market is projected to grow from 165.68 MW in 2024 to 451.09 MW by 2029, reflecting a 22.18% CAGR.

According to Naukri, In India, data analyst professionals earn salaries ranging from INR 6 LPA to INR 12 LPA, depending on experience, skill set, and industry.

Tools and Technologies required to become data analyst

The curriculum focuses on industry-standard tools and technologies widely used in analytics roles, including:

  1. Python for data analysis and automation

  2. SQL for database querying and data management

  3. Microsoft Excel for data handling, reporting, and analysis

  4. Tableau for interactive data visualization

  5. Power BI for business intelligence and dashboard creation

  6. Statistics and business analytics for data-driven decision-making

Key Skills You Will Gain from Data Analytics Training

  1. Statistical Analysis: Learners develop a strong understanding of descriptive and inferential statistics, probability, hypothesis testing, and statistical modeling. These skills enable analysts to identify patterns, trends, and relationships within data.

  2. Data Cleaning and Preparation: Data quality is critical for accurate analysis. The course trains learners to clean, preprocess, and transform raw datasets by handling missing values, duplicates, and inconsistencies.

  3. SQL and Database Management: SQL skills allow learners to extract, filter, join, and analyze large datasets efficiently. Hands-on practice ensures proficiency in real-world database environments.

  4. Python Programming for Analytics: Python is a core analytics tool. Learners gain experience using libraries such as Pandas, NumPy, and Matplotlib to analyze and visualize data effectively.

  5. Data Visualization and Reporting: Through Tableau and Power BI, learners learn to create dashboards and reports that communicate insights clearly to stakeholders.

  6. Business Analytics and Problem-Solving: The program emphasizes applying analytics to real business challenges, enabling learners to translate data insights into actionable strategies.

Why Choose DataMites for Data Analytics Training in Tirunelveli?

DataMites is recognized for delivering high-quality data analytics training in Tirunelveli with a strong focus on practical learning and career outcomes.

  1. Internship Opportunities: The data analytics training in Tirunelveli with internship allows learners to gain hands-on experience by working with real business datasets and analytics workflows. This exposure strengthens practical skills and builds professional confidence.

  2. Placement Assistance: DataMites offers structured placement support, making it a preferred data analytics course in Tirunelveli with placement. Learners receive assistance with resume building, mock interviews, career counseling, and access to hiring partner networks.

  3. Live Projects and Capstone Assignments: Participants work on live data analytics projects and multiple capstone assignments that simulate real business problems, helping them build a strong job-ready portfolio.

  4. Globally Recognized Certifications: The DataMites Data Analytics program offers globally recognized certifications accredited by IABAC® and NASSCOM FutureSkills. These credentials validate industry-relevant analytics skills and enhance professional credibility across industries and job markets.

  5. Flexible Learning Options: DataMites offers flexible learning with weekday and weekend batches to suit different schedules. Learners can choose online data analyst courses in Tirunelveli, blended formats, or on-demand offline classes, making it easy to balance learning with academics and work.

  6. Industry-Experienced Mentors: Training at DataMites is delivered by industry-experienced analytics professionals with real-world expertise. Mentors provide continuous guidance, practical insights, and exposure to industry best practices throughout the program. 

  7. Data Analytics Training in Tirunelveli with Internship: The internship component is a key highlight of the Data Analytics Training in Tirunelveli with internship. Learners gain practical exposure to real-world datasets, analytics tools, and business scenarios. This experience improves analytical thinking, strengthens technical skills, and enhances employability.

Data Analytics Courses in Tirunelveli with Placement Support

DataMites provides end-to-end placement support as part of its data analytics courses with placement in Tirunelveli. Services include professional resume preparation, mock interviews, technical assessments, and career guidance. This structured support helps learners confidently pursue analytics roles across industries.

DataMites Data Analytics Courses in Tirunelveli

The DataMites Data Analytics courses in India emphasizes practical, industry-relevant skills, making it accessible to learners throughout Tirunelveli and nearby regions. The program caters to students from prominent areas like Palayamkottai (627001), Thermalpatti (638673), Perumalpuram (627007), Sankarankovil Road (627604), Anna Nagar (600040), Thiruchendur Road (628215), Melapalayam (627005), Alangulam (627851), Nanguneri (627108), and Kadankulam (686513), offering easy enrollment and participation.

DataMites Institute offers classroom-based, instructor-led training with hands-on practice, direct trainer interaction, practical labs, and real-time doubt resolution. With a strong presence across major Indian cities including offline data analytics courses in Chennai, Bangalore, Hyderabad, Mumbai, Pune, Ahmedabad, Jaipur, Coimbatore, Delhi, Nagpur, Noida, Kochi and Kolkata, DataMites delivers consistent, national-level training standards to aspiring analytics professionals.

Whether starting your career or transitioning into analytics, DataMites equips learners with industry-ready skills and globally recognized certifications. Along with Data Analytics courses in India, Data Science course, Artificial Intelligence, Machine Learning, Tableau, Power BI, and Python Programming. Enroll today and begin your journey in today’s data-driven industries.

ABOUT DATA ANALYTICS COURSE IN TIRUNELVELI

Data Analytics course helps learners build in demand skills for data-driven roles. While Tirunelveli is emerging, nearby cities like Chennai, Bengaluru, and Kochi offer strong Data Analytics job opportunities.

The duration of a Data Analytics course in Tirunelveli typically ranges from 4 to 8 months, depending on learning mode, curriculum depth, and hands-on project exposure.

Data Analytics course helps learners build in demand skills for data-driven roles. While Tirunelveli is emerging, nearby cities like Chennai, Bengaluru, and Kochi offer strong Data Analytics job opportunities.

To choose the best option, check curriculum quality, practical projects, tools taught, learner reviews, and career outcomes. Comparing offerings with Chennai-based programs helps evaluate standards. and recognized certifications like IABAC or NASSCOM.

The demand for Data Analytics careers in India is rapidly rising and According to Financial Express.com India leads globally in job listings requiring data analytics skills, with about 17.4% of all job postings asking for analytics expertise, showing a 52% growth over the past five years. This reflects how crucial data analytics has become for business decision-making across sectors like IT, finance, healthcare, and e-commerce.

Data Analyst average salary in India ranges around  ₹4 to ₹7 Per Annum  According to  Glassdoor, with typical pay from ₹4 to ₹9 Lakhs Per Annum depending on experience and city. 

The syllabus includes Excel, SQL, Python, statistics, data cleaning, visualization (Power BI/Tableau), business analytics, real-world projects, case studies, internships, and interview preparation.

After completing Data Analytics training, learners can pursue roles such as Data Analyst, Business Analyst, Reporting Analyst, or Analytics Consultant across multiple industries.

Basic coding is helpful but not mandatory initially. Data Analytics often starts with Excel and SQL, while Python or R can be learned gradually for advanced analysis.

Data Analytics focuses on analyzing existing data for insights, while Data Science involves advanced modeling, algorithms, and predictive techniques using large and complex datasets.

Data Analytics in Tamil Nadu offers roles like Data Analyst, MIS Analyst, and Business Analyst, especially in Chennai and Coimbatore where IT, finance, and manufacturing sectors drive analytics demand.

AI for Data Analytics can be learned by mastering Python, machine learning basics, and automation tools. Many professionals start analytics first, then expand into AI-driven insights.

Modern Data Analytics uses tools such as Excel, SQL, Python, Power BI, Tableau, and cloud platforms to analyze data, build reports, and support business decisions.

Yes, it’s possible to learn Data Analytics in 3 months through focused, intensive programs. By covering core topics like Excel, SQL, Python, and data visualization, and practicing real-world projects, you can gain practical skills suitable for entry-level analytics roles.

Yes, Data Analytics courses are suitable for working professionals due to flexible learning options, practical focus, and career relevance across domains like IT, finance, and operations.

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FAQ’S OF DATA ANALYTICS TRAINING IN TIRUNELVELI

DataMites Data Analytics course in Tirunelveli is known for industry-aligned curriculum, experienced trainers, practical projects, and strong learner support, making it a preferred choice for Data Analytics training.

Yes, DataMites provides internship opportunities as part of its Data Analytics program, helping learners gain real-world experience and practical exposure.

DataMites offers flexible EMI options, making Data Analytics training accessible for students and working professionals to upskill without financial burden.

DataMites Data Analytics Course follows a structured refund policy with defined terms and conditions, ensuring transparency for learners enrolling in Data Analytics courses.

The Data Analytics course fees at DataMites range from ?38,474 for blended learning, ?61,135 for live online training, and up to ?66,647 for classroom mode, depending on the learning format and offers available.

Yes, DataMites provides Data Analytics Training with placement assistance, including career guidance, interview preparation, and job support for Data Analytics learners.

DataMites Data Analytics Trainers are industry professionals with hands-on experience in Data Analytics, ensuring practical and job-relevant learning.

Yes, DataMites Data Analytics course in Tirunelveli offers live projects to help learners apply Data Analytics concepts to real-world business scenarios.

The Certified Data Analyst Course at DataMites generally spans around 6 months, including structured training, projects, internships, and placement preparation support.

DataMites accepts multiple payment methods including debit cards, credit cards, net banking, UPI, and EMI financing options for learner convenience.

DataMites Institute headquarters is located in Bengaluru, India, serving learners across multiple cities.

DataMites Bangalore: Bajrang House, 7th Mile, C-25, Bengaluru - Chennai Hwy, Kudlu Gate, Garvebhavi Palya, Bengaluru, Karnataka 560068.

After completing the Data Analytics course at DataMites, you receive an industry-recognized Certified Data Analyst credential accredited by IABAC® along with a course completion certificate and project experience documentation validating your skills in data analytics. 

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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