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There are 4 modules in this course
Learners will gain the ability to manipulate, analyze, and visualize data effectively using Python’s Pandas library. By the end of this course, they will be able to filter and transform datasets, apply grouping and aggregation, handle missing values, manage indexes, and reshape data for advanced analytics. They will also master techniques for working with time series, pivot tables, crosstabs, and exporting data to CSV and Excel.
This course is designed for aspiring data analysts, Python enthusiasts, and professionals looking to strengthen their data manipulation skills. With hands-on lessons and quizzes, learners will build confidence in handling real-world datasets while applying best practices for efficiency and readability.
What makes this course unique is its structured progression—from foundational Pandas operations to advanced techniques—combined with practical exercises and applied projects. Learners won’t just watch tutorials; they will actively practice data handling in Jupyter Notebooks, ensuring they are job-ready for data science and analytics roles.
This module introduces learners to the Pandas library, its installation, and the Jupyter environment for hands-on coding. It covers Pandas’ core data structures, including Series and DataFrames, and explores fundamental operations for working with rows and columns. Learners build a strong foundation for effective data handling.
What's included
9 videos4 assignments
Show info about module content
9 videos•Total 46 minutes
Introduction to Pandas with Python•5 minutes
Understanding Jupiter Environment•4 minutes
Reading the Data Set•9 minutes
Series and Data Frame•4 minutes
Operations in Data Set•4 minutes
More on Panda Functions•6 minutes
Column Names and Operation•9 minutes
Removing Columns and Rows•3 minutes
Sorting Data Frame•3 minutes
4 assignments•Total 60 minutes
Graded-Getting Started with Pandas•30 minutes
Introduction and Setup•10 minutes
Core Data Structures•10 minutes
Working with Columns and Rows•10 minutes
Data Selection and Transformation
Module 2•2 hours to complete
Module details
This module focuses on advanced filtering, selection, and transformation of data. Learners explore indexing by labels and positions, handle data types, apply string methods, and group data for aggregation. It also emphasizes working with Series, plotting, and handling null values.
What's included
12 videos4 assignments
Show info about module content
12 videos•Total 50 minutes
Filtering Data•7 minutes
Filter Multiple Criteria•6 minutes
Selective Columns and Rows•3 minutes
Data Frame and Series•2 minutes
Axis Parameter•3 minutes
String Methods in Pandas•4 minutes
Changing the Data Types•4 minutes
Example of Data Type Change•4 minutes
Group by Functions•4 minutes
Functions on Series•4 minutes
Plotting series in Pandas•4 minutes
Dealing with Null Values•5 minutes
4 assignments•Total 60 minutes
Graded-Data Selection and Transformation•30 minutes
Filtering and Selection Techniques•10 minutes
Data Types and Grouping•10 minutes
Working with Series and Null Values•10 minutes
Indexing, Sampling, and Advanced Functions
Module 3•3 hours to complete
Module details
This module introduces indexing concepts and parameters that enhance data manipulation. Learners explore memory management, sampling strategies, dummy coding, handling duplicates, working with date/time functions, and avoiding common pitfalls like copy warnings.
What's included
16 videos4 assignments
Show info about module content
16 videos•Total 106 minutes
Uses of Index•6 minutes
Column in Index•6 minutes
Output of Data•8 minutes
Functions of iX Method•9 minutes
InPlace Parameter•4 minutes
Inspecting the Space•5 minutes
Reducing the Space•10 minutes
Using in Country Series•4 minutes
Creating Manual Data Frame•7 minutes
Random Sampling with Pandas•4 minutes
Concept of Dummy Coding•12 minutes
Creating Dummified Values•4 minutes
Duplicates in Data Frame•9 minutes
Functions for Date and Time•9 minutes
Setting with Copy Warning•5 minutes
Example on Copy Warning•5 minutes
4 assignments•Total 60 minutes
Graded-Indexing, Sampling, and Advanced Functions•30 minutes
Exploring Index and Parameters•10 minutes
Space, Sampling, and Dummy Coding•10 minutes
Handling Duplicates, Dates, and Warnings•10 minutes
Advanced Data Operations and Export
Module 4•4 hours to complete
Module details
This module covers advanced reshaping, merging, and exporting functionalities in Pandas. Learners gain expertise in display options, formatting, working with pivot tables, crosstab functions, and exporting data to external formats like CSV and Excel for practical applications.
What's included
22 videos4 assignments
Show info about module content
22 videos•Total 152 minutes
Changing the Display Option•4 minutes
Formatting the Data•7 minutes
Tricks for Display Options•7 minutes
Data with Rows and Columns•9 minutes
Converting Data Frame•4 minutes
Introduction to Azure Data Lake•7 minutes
Merging Data Frames•9 minutes
Shaping a Data Frame•8 minutes
Filling NA Values•3 minutes
Importing Time Series Data•8 minutes
Working with Interpolate Method•10 minutes
Stacking and Unstacking•10 minutes
Stacking and Unstacking for 3 Levels•4 minutes
Concept of Crosstab•9 minutes
More on Crosstab•8 minutes
More Options with Crosstab•10 minutes
Functions of Pivot•4 minutes
Pivot Table Method•6 minutes
Example on Pivot Table•10 minutes
Data Frame to CSV File•7 minutes
Using Excel Functions•8 minutes
Summary on Pandas•3 minutes
4 assignments•Total 60 minutes
Graded-Advanced Data Operations and Export•30 minutes
Display Options and Formatting•10 minutes
Merging, Reshaping, and Time Series•10 minutes
Stacking, Pivoting, and Exporting•10 minutes
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