Master Bayesian Statistics: Apply, Implement & Optimize A/B Testing equips you with the knowledge and practical skills to apply Bayesian statistics to machine learning, A/B testing, and healthcare analytics. Throughout the course, you will build a solid foundation in Bayesian inference, learn how probabilistic thinking supports decision-making under uncertainty, and implement Markov Chain Monte Carlo (MCMC) sampling using PyMC to approximate posterior distributions.

Bayesian Statistics: Excel to Python A/B Testing

Bayesian Statistics: Excel to Python A/B Testing

Instructor: EDUCBA
Access provided by Coursera for Community Guides
27 reviews
What you'll learn
Apply Bayesian reasoning in Excel to calculate, update, and interpret probabilities.
Build probabilistic models and analyze predictive performance in real datasets.
Use Python with MCMC and PyMC for A/B testing, posterior inference, and scaling.
Skills you'll gain
- Business Analytics
- Decision Making
- Statistical Machine Learning
- Sampling (Statistics)
- Diagnostic Tests
- Statistical Methods
- Excel Formulas
- Statistical Modeling
- Statistical Programming
- Probability Distribution
- Health Informatics
- A/B Testing
- Bayesian Statistics
- Predictive Analytics
- Advanced Analytics
- Markov Model
- Probability & Statistics
Tools you'll learn
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Reviewed on Feb 8, 2026
It transforms complex Bayesian ideas into actionable insights and smoothly guides learners from spreadsheet analysis to Python-based experimentation.
Reviewed on Feb 12, 2026
A transformative course for analysts seeking modern experimentation techniques. Bayesian thinking feels intuitive after this training.
Reviewed on Feb 11, 2026
The instructor explains complex ideas in a straightforward way. This course truly elevates experimentation skills.
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