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EDUCBA

Pandas with Python: Analyze, Transform & Export Data

Build practical data analysis skills with Python’s Pandas library. This course guides you from setting up Pandas in Jupyter Notebooks and working with Series and DataFrames to filtering, indexing, sorting, grouping, and transforming datasets. You’ll learn to convert data types, apply string methods, manage missing values and duplicates, optimize memory use, sample data, create dummy variables, and work confidently with date-time data. As you progress, you’ll configure display options, format outputs, merge and reshape data, interpolate time series, and use stacking, unstacking, pivot tables, and crosstabs. You’ll also export processed data to CSV and Excel for practical use. Designed for aspiring data analysts, Python enthusiasts, and professionals who want stronger data manipulation skills, the course combines structured lessons, quizzes, practical exercises, and applied projects. Its step-by-step progression from Pandas fundamentals to advanced data operations helps you practice with real-world datasets while improving efficiency and readability. Enroll to build confidence in preparing, analyzing, visualizing, and exporting data for data science and analytics work.

Status: Operations
Status: Microsoft Excel
Course11 hours

Featured reviews

L

Reviewed Nov 29, 2025

This course made Pandas so easy to understand. I can now clean, filter, and analyze datasets with confidence. The hands-on practice really helped.

SU

Reviewed Dec 8, 2025

I loved how the course started with the basics and slowly moved into advanced topics like pivot tables and time series. It felt very beginner-friendly.

ZC

Reviewed Jan 19, 2026

The hands-on Jupyter Notebook practice was extremely helpful. It made me feel like I was working on real projects,

S

Reviewed Apr 3, 2026

The step-by-step approach made learning Pandas simple. I now feel confident working with datasets in Python and handling missing values.

L

Reviewed Dec 18, 2025

The instructor explained everything clearly, especially indexing and data reshaping. These concepts used to confuse me, but now I feel comfortable using them.

A

Reviewed Apr 9, 2026

The course explained grouping and aggregation very well. I can now summarize data using groupby without confusion.

A

Reviewed Apr 15, 2026

I learned how to work with time series data and indexes, which was very useful for my work-related projects.

SS

Reviewed Apr 12, 2026

As a beginner in data analysis, this course was perfect for me. The explanations were easy, and the quizzes helped reinforce learning.

SC

Reviewed Dec 12, 2025

Before this course, Pandas seemed overwhelming. Now I can group data, handle missing values, and export results to Excel without any confusion.

LL

Reviewed Jan 20, 2026

This course helped me understand Pandas in a very clear way. I learned how to filter, clean, and transform data easily using real examples.

N

Reviewed Apr 6, 2026

I really liked the hands-on practice in Jupyter Notebooks. It helped me apply what I learned instead of just watching videos.

All reviews

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Laraib
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Reviewed Dec 19, 2025
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Reviewed Dec 9, 2025
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Reviewed Nov 30, 2025
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Reviewed Dec 13, 2025
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Reviewed Apr 4, 2026
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Reviewed Jan 20, 2026
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Reviewed Apr 16, 2026
Kazi Mashfiq Hossain Mahi
1.0
Reviewed Dec 19, 2025
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1.0
Reviewed Aug 4, 2026