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Data Science with Python: Analyze & Visualize
Coursera MOOC / Non-credit all levels

Data Science with Python: Analyze & Visualize

About this course

Master the essential skills of data science with Python by learning how to analyze data, create meaningful visualizations, apply statistical methods, and implement foundational machine learning techniques. This course takes you through a structured learning journey, beginning with Python programming fundamentals and progressing to data visualization, statistical analysis, probability, hypothesis testing, Bayesian inference, regression, gradient descent, and practical data analysis. Designed for aspiring data scientists, data analysts, business intelligence professionals, and anyone looking to strengthen their analytical skills, this course combines programming with practical data science workflows. You will learn to build reusable Python functions and libraries, preprocess datasets, create charts, line graphs, scatter plots, histograms, and box plots, evaluate statistical measures and data distributions, and apply regression models to generate reliable insights. What makes this course unique is its integrated approach, connecting Python programming, visualization, statistics, and machine learning into a single learning path. Rather than learning these topics in isolation, you will develop the ability to interpret data, validate assumptions using statistical techniques, and communicate findings through effective visualizations. By the end of the course, you will be able to analyse datasets with confidence, implement data-driven workflows, and apply Python-based analytical techniques to solve real-world data challenges.

$49.00

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