DATA ANALYTICS CERTIFICATION AUTHORITIES

COURSE FEATURES

DATA ANALYTICS COURSE LEAD MENTORS

DATA ANALYTICS COURSE FEE IN MADHAPUR, HYDERABAD

Live Virtual

Instructor Led Live Online

110,000
55,451

  • 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
34,900

  • 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
60,451

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

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UPCOMING DATA ANALYTICS ONLINE CLASSES IN MADHAPUR

UPCOMING DATA ANALYTICS OFFLINE CLASSES IN MADHAPUR

BEST DATA ANALYTICS 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 FOR DATA ANALYTICS TRAINING

Why DataMites Infographic

SYLLABUS OF DATA ANALYTICS CERTIFICATION COURSE

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 MADHAPUR

DATA ANALYTICS TRAINING COURSE REVIEWS

ABOUT DATA ANALYTICS COURSE IN MADHAPUR

The Data Analytics course in Madhapur provides valuable opportunities in the thriving tech and business sectors, where the demand for data-driven insights continues to grow exponentially. According to a Statista report, In 2021, the global big data analytics market surpassed a valuation of 240 billion U.S. dollars. Projections indicate substantial growth in the upcoming years, with an anticipated market value exceeding 650 billion dollars by 2029. Additionally, the salary of a data analyst in Hyderabad ranges from INR 7,29,383 per year according to a Glassdoor report.

DataMites, a well-regarded institute of global repute, provides specialized Data Analytics Courses in Madhapur, focusing on professional education in leading-edge technologies like data science, data engineering, artificial intelligence, machine learning, and Python. Noteworthy for its international accreditation from IABAC, the institute ensures that participants receive globally recognized certification upon successfully finishing the course. With more than a decade of experience, DataMites has successfully guided and instructed over 50,000+ learners worldwide. The Data Analytics training in Madhapur, led by experienced mentors, equips students to make informed decisions regarding their career paths.

DataMites offers a comprehensive Certified Data Analyst Training Course in Madhapur that extends over six months, covering essential topics such as MySQL, Power BI, Excel, and Tableau. The course provides an in-depth learning experience, totaling 200 hours. DataMites also facilitates offline data analytics training in Madhapur, providing fundamental insights into the field. The program incorporates internship support and job placement initiatives to enhance the overall career progression of participants.

DataMites provides comprehensive Data Analytics Training in Madhapur, offering:

  • Guidance from faculty under the leadership of Ashok Veda, the Lead Mentor

  • A meticulously designed course curriculum

  • Provision of hardcopy learning materials and books

  • Competitive and affordable pricing with scholarship opportunities

  • Assistance in resume preparation

  • Involvement in live client projects

  • Access to the exclusive DataMites Learning Community through membership

  • Global IABAC Certification upon successful completion

  • Flexible training modes, including online, offline, and blended options with hands-on projects

  • Round-the-clock job and placement assistance

  • Intensive live online training

Madhapur is a bustling suburb in Hyderabad, India, known for its vibrant IT and business district, housing numerous tech parks, upscale restaurants, and commercial establishments. The scope of data analytics in Madhapur is thriving, offering immense opportunities for professionals to harness actionable insights in various industries. Enrol in the DataMites offline data analytics course in Madhapur to gain comprehensive insights and knowledge in the field.

ABOUT DATAMITES DATA ANALYTICS COURSE IN MADHAPUR

Data Analytics involves employing statistical and computational methods to draw meaningful insights from data.

A variety of sectors, including marketing, finance, healthcare, and government, employ data analytics to guide decision-making processes.

Data analytics offers substantial career growth potential, with an estimated job growth of 15% from 2020 to 2030 and an average annual salary of $98,230 in 2020.

Essential skills in data analytics include proficiency in programming languages like Python and R, statistical analysis, data visualization, and machine learning.

Roles encompass positions such as data analyst, data scientist, business analyst, and data engineer.

Commonly used tools include Tableau, Excel, SQL, and programming libraries like Pandas and Scikit-learn in Python.

Eligibility requirements vary by institution but typically favor a background in mathematics or computer science.

The course fee typically falls in the range of 50,000 to 80,000 for data analytics courses in Madhapur.

As per an Indeed report, the salary for a data analyst in Madhapur ranges from INR 5,09,453 per year.

The role involves analyzing data to extract insights and trends, assisting individuals and organizations in making informed decisions using various techniques and tools.

Yes, data analytics presents numerous opportunities across industries and career levels, with top-tier positions commanding substantial salaries.

Certainly, there is a high demand for data analyst positions as businesses increasingly adopt data-driven decision-making.

Recent graduates with relevant degrees and analytical skills can commence their careers as entry-level data analysts.

Becoming a data analyst is not inherently difficult but requires specific technical skills, and continuous education is essential due to ongoing advancements in the field.

Working in data analytics can be demanding, involving extended hours and tight deadlines. Maintaining a healthy work-life balance with regular breaks is crucial for managing potential job-related stress.

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FAQ'S OF DATA ANALYTICS TRAINING IN MADHAPUR

DataMites Institute distinguishes itself in Madhapur with its data analytics program, featuring seasoned instructors, a comprehensive curriculum, and a practical learning approach. The emphasis on hands-on training, real-world projects, and placement assistance positions it as a prime choice for those looking to enhance their data analytics skills.

Enrolling in the data analytics course at DataMites offers advantages such as hands-on training, expert instructors, a well-rounded curriculum, industry-recognized certifications, career support, and flexible learning options.

The flexible duration of the data analytics course at DataMites in Madhapur is six months, comprising 200+ learning hours. Students are expected to allocate 20 hours per week, and they have one-year access to e-learning resources.

At DataMites, the course fee for the data analytics course in Madhapur ranges from INR 35,773 to INR 110,000.

The Flexi-Pass option at DataMites allows students to access course content for a specific period, providing flexibility in completing the course at their own pace.

Certainly, DataMites offers a complimentary demo class for interested students to experience the teaching style, course content, and learning environment before deciding to enroll.

Upon completing the data analytics courses at DataMites in Madhapur, students receive industry-recognized certifications, enhancing their career prospects.

DataMites accepts various payment methods, including cash, net banking, checks, debit cards, credit cards, PayPal, Visa, Mastercard, and American Express.

The premier data analytics course at DataMites is the Certified Data Analytics Course in Madhapur.

The Certified Data Analytics (CDA) course in Madhapur at DataMites is open to individuals new to data analytics, requiring no prior coding knowledge or experience.

Enrolling in a data analytics course at DataMites offers advantages such as a comprehensive curriculum, industry-relevant training, experienced trainers, hands-on learning, certification, and placement support.

Students with a fundamental grasp of analytics and a background in mathematics are encouraged to consider enrolling in the data analytics course at Madhapur.

The training team comprises certified instructors with extensive industry experience, selected based on their certifications and profound understanding of the subject matter.

DataMites provides versatile learning options, offering both online data analyst training and engaging classroom sessions in data analytics.

The Certified Data Analyst curriculum from DataMites is recognized by IABAC and NASSCOM, providing credentials endorsed by reputable organizations and serving as an excellent pathway to initiate a career 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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