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Build practical Jupyter Notebook, IPython, and Python data visualization skills through a structured, hands-on course designed for beginners and practitioners who want to strengthen their data science, research, or analytics workflows. You will learn to install, configure, and customize Jupyter Notebook; use IPython for Markdown, arithmetic, interactive code execution, and documentation; and perform fundamental computations in a notebook environment.
You will then create clear, meaningful visualizations with Matplotlib and NumPy. Explore line plots, scatter plots, histograms, bar charts, pie charts, and polar charts while learning to apply NumPy functions and style formatting to customize graphs and communicate categorical, circular, and other dataset insights effectively.
What makes this course distinctive is its streamlined progression from notebook setup and IPython basics to foundational and advanced chart types. Each lesson connects essential concepts with practical application, helping you build confidence in executing code, documenting your work, and presenting data visually. Enroll to develop an organized Python workflow and create professional visualizations for data-driven applications.