Complete Guide to NumPy, Pandas, SciPy, Matplotlib & Seaborn

Boost your data science skills by mastering NumPy, Pandas, SciPy, and powerful visualization tools in Python.


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What you’ll learn

  • Introduction to Python for Data Science
  • Overview of NumPy, Pandas, Matplotlib, and SciPy
  • Creating NumPy Arrays
  • Mathematical Operations with NumPy Arrays
  • Working with Random Numbers and Simulations
  • Advanced Array Manipulation and Linear Algebra
  • NumPy for Statistical Computations (Mean, Median, Standard Deviation)
  • Performance Optimization with NumPy
  • Loading and Saving Data with Pandas (CSV, Excel, SQL, etc.)
  • Indexing, Selecting, and Filtering Data in DataFrames
  • Advanced Pandas Techniques
  • Matplotlib Data Visualization
  • Seaborn Advanced Visualization Techniques
  • SciPy Scientific Computing
  • Combining Libraries for Real World Data Science
  • And more……..

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Course content

8 sections • 29 lectures • 4h 28m total length

  • Creating NumPy Arrays06:05
  • Array Indexing, Slicing, and Reshaping09:10
  • Mathematical Operations with NumPy Arrays08:37
  • Broadcasting and Vectorized Operations07:25
  • Working with Random Numbers and Simulations07:51
  • Advanced Array Manipulation and Linear Algebra09:57
  • NumPy for Statistical Computations (Mean, Median, Standard Deviation)05:13
  • Handling Missing Data with NumPy08:02
  • Performance Optimization with NumPy05:44
  • Loading and Saving Data with Pandas (CSV, Excel, SQL, etc.)09:07
  • Indexing, Selecting, and Filtering Data in DataFrames09:54
  • Data Cleaning: Handling Missing Data, Duplicates, and Outliers14:08
  • Data Transformation with Pandas (Merging, Joining, Concatenating)10:21
  • Pivot Tables and Cross-Tabulations10:49
  • Working with Time Series Data in Pandas07:15
  • DataFrame Operations: Apply, Map, Lambda Functions08:47
  • Creating Basic Plots: Line, Bar, and Scatter Plots10:06
  • Customizing Plots: Titles, Labels, Legends, and Grids08:34
  • Subplots and Layouts in Matplotlib10:56
  • Plotting Statistical Data: Histograms, Boxplots, and Pie Charts14:47
  • Creating Beautiful Statistical Visualizations with Seaborn08:34
  • Pairplots, Heatmaps, and Regression Plots08:25
  • Customizing Seaborn Plots for Professional Visuals09:22
  • Working with SciPy Modules: Integrating, Optimizing, and Solving Equations10:57
  • Linear Algebra with SciPy10:54
  • Statistics with SciPy: Hypothesis Testing, Descriptive Statistics08:09
  • Signal and Image Processing with SciPy10:10
  • Data Preprocessing with Pandas and NumPy09:34
  • Performing Statistical Analysis with SciPy09:22

Requirements

  • Basic understanding of Python programming (variables, data types, loops, functions).
  • No prior experience with NumPy, Pandas, SciPy, Matplotlib, or Seaborn is required.

Description

Are you ready to unlock the full potential of Python for data science, analytics, and scientific computing? Whether you’re a beginner eager to enter the world of data or an experienced programmer looking to deepen your skills, this course is your complete resource for mastering the core Python libraries: NumPy, Pandas, SciPy, and Matplotlib/Seaborn.

This hands-on, project-driven course is designed to take you from the basics all the way to advanced techniques in data analysis, numerical computing, and data visualization. You’ll learn how to work with real-world datasets, perform complex data operations, and create stunning, publication-quality visualizations.

What You’ll Learn:

  • NumPy – Work with multidimensional arrays, broadcasting, indexing, and performance optimization
  • Pandas – Master dataframes, series, grouping, filtering, merging, and time series data
  • SciPy – Dive into scientific computing with optimization, statistics, interpolation, signal processing, and more
  • Matplotlib & Seaborn – Create insightful and beautiful visualizations, from basic plots to advanced charts
  • Data Workflow – Clean, transform, and prepare data for analysis and modeling

Why Take This Course?

  • Taught by experienced data professionals
  • Practical, hands-on learning with real-world datasets
  • Covers both the theory and the application
  • Builds a solid foundation for advanced data science and machine learning

By the end of this course, you’ll be confident in your ability to manipulate, analyze, and visualize data using Python’s most essential libraries — a skill set that’s in high demand across industries.

Enroll now and start your journey into data mastery today!

Who this course is for:

  • Anyone interested in mastering the core Python libraries for data manipulation, analysis, and visualization.
  • Students and professionals looking to enhance their data driven skills.
  • Machine Learning Engineers who need to manipulate and understand data effectively.
  • Python developers looking to transition into data science.

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