This Statistics for Data Science course is designed to introduce you to the basic principles of statistical methods and procedures used for data analysis. After completing this course you will have practical knowledge of crucial topics in statistics including - data gathering, summarizing data using descriptive statistics, displaying and visualizing data, examining relationships between variables, probability distributions, expected values, hypothesis testing, introduction to ANOVA (analysis of variance), regression and correlation analysis. You will take a hands-on approach to statistical analysis using Python and Jupyter Notebooks – the tools of choice for Data Scientists and Data Analysts.

Statistics for Data Science with Python

Statistics for Data Science with Python
This course is part of Data Science Fundamentals with Python and SQL Specialization


Instructors: Murtaza Haider
Access provided by SR University
43,139 already enrolled
461 reviews
What you'll learn
Write Python code to conduct various statistical tests including a T test, an ANOVA, and regression analysis.
Interpret the results of your statistical analysis after conducting hypothesis testing.
Calculate descriptive statistics and visualization by writing Python code.
Create a final project that demonstrates your understanding of various statistical test using Python and evaluate your peer's projects.
Skills you'll gain
Tools you'll learn
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There are 9 modules in this course
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Reviewed on Nov 19, 2020
Excellent course to help clear doubts for the level of statistics needed for data science. It a great experience. well done IBM!
Reviewed on Apr 4, 2021
I highly recommend this course for anyone that is having problems with basic statisitcs.
Reviewed on Apr 6, 2021





