Post Graduate Program in Business Analytics and Visualization (PGP-BA&V)

BY
Amity Future Academy

Mode

Online

Duration

12 Months

Fees

₹ 100000

Inclusive of GST

Quick Facts

particular details
Medium of instructions English
Mode of learning Self study, Virtual Classroom
Mode of Delivery Video and Text Based
Learning efforts 8-10 Hours Per Week

Course and certificate fees

Fees information
₹ 100,000  (Inclusive of GST)

The fees for the course Post Graduate Program in Business Analytics and Visualization is -

HeadAmount
Programme feesRs. 1,00,000
certificate availability

Yes

certificate providing authority

Amity Future Academy

The syllabus

Module 1 – The Science of Data Driven Decision Making

  • Data and its classifications: Continuous & Discrete, Structured vs Unstructured
  • Fundamentals of R
  • Data manipulation
  • Data Visualization

Module 2 – Fundamental Data Analysis to Real Business Problems

  • Describing and Summarizing Data
  • Sampling and Estimation
  • Hypothesis Testing
  • Single Variable Linear Regression
  • Multiple Regression

Module 3 – Inferential Statistics

  • Measuring & Modelling uncertainty
  • Bayes Theorem
  • Probability and Inferential Statistics - I
  • Probability and Inferential Statistics - II
  • Discrete Random Variables vs Probability Distributions
  • Sampling and Estimation
  • Inferential Statistics & Examples of Hypothesis Testing
  • Analysis of Variance - ANOVA

Module 4 – Supervised Learning Algorithms

  • Linear Regression
  • Logistic Regression
  • K-nearest Neighbor
  • Decision Tree
  • Random Forrest 

Module 5 – Forecasting Techniques

  • Linear optimization
  • Optimal solution using Excel solver
  • Sensitivity Analysis
  • Time series analysis
  • Exponential smoothing
  • ARIMA modelling

Module 6 – Optimization Analytics Techniques

  • Clustering
  • Prescriptive Analytics
  • Association Rule
  • Variables
  • Constraints
  • Objective function

Module 7 – Dimension Reduction Techniques

  • Model Diagnosis
  • Outlier Analysis
  • Principal Component Analysis
  • Factor Analysis

Module 8 – Ensemble Learning Techniques

  • Resampling method
  • K-fold cross validation method
  • Bagging and boosting
  • Gradient boosting
  • Bootstrapping

Module 9 – Primer on Big Data and Artificial Intelligence

  • Data Mining
  • Data Mining with traditional tools and technologies
  • Data mining with Big Data and Advanced Techniques

Instructors

Mr Tushar Kakkaiya
Instructor
Freelancer

Dr Suresh Varadarajan
Instructor
Freelancer

Ph.D

Dr Karthic Narayanan
Instructor
Freelancer

Ph.D

Mr Pranav Shastri
Program Director
Freelancer

Ph.D

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