Build a strong foundation in data manipulation and statistical modeling using Python to transform raw datasets into actionable insights.
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このコースについて
Data science is a critical skill for modern decision-making, yet getting started requires a clear path through programming and statistics. This course guides you through the essential Python ecosystem, moving from basic syntax to building predictive models and conducting thorough data investigations.
You will learn how to transition from raw data to meaningful conclusions by applying industry-standard libraries and modern coding practices. By the end of this course, you will be able to handle data workflows independently using written code and logical analysis.
What you'll learn:
- Understand Python fundamentals including modern type hints and data structures
- Clean and manipulate complex datasets using the pandas library
- Apply statistical methods and hypothesis testing to validate data patterns
- Create clear and informative data visualizations with Matplotlib and Seaborn
- Build and evaluate predictive machine learning models using scikit-learn
- Practice exploratory data analysis to uncover hidden trends in raw information
- Implement modern coding practices like virtual environments and clean code formatting
The curriculum begins with fundamental Python concepts before progressing into specialized libraries for data processing and machine learning. You will move through structured written explanations and code-based exercises designed to simulate real-world data challenges. This course is designed for beginners with no prior programming or data science experience who want a structured introduction to the field. Start your journey into data science by reading through the foundational principles of Python today.