Python and Machine Learning for Financial Analysis
Develop the skills to analyze market data, forecast trends, and build automated financial models using modern Python techniques.
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このコースについて
Financial markets are increasingly driven by data, making the ability to code and model essential for modern analysts. This course provides a structured introduction to using Python for financial data science, moving from basic syntax to sophisticated predictive algorithms.
You will transform your approach to finance by learning how to programmatically fetch data, evaluate market trends, and implement machine learning models. By the end of this course, you will be able to apply statistical techniques and automated workflows to solve complex financial problems and manage risk effectively.
What you'll learn:
- Learn Python programming essentials using modern data libraries and type hints for robust financial code.
- Build and backtest technical trading strategies using indicators like MACD and Bollinger Bands.
- Master time series analysis and volatility modeling with ARIMA and GARCH frameworks.
- Apply portfolio optimization and Monte Carlo simulations to price assets and estimate Value at Risk.
- Create machine learning models for credit risk and fraud detection using advanced classifiers like XGBoost.
- Understand factor models such as CAPM and Fama-French to evaluate asset performance.
The course begins with core terminology and Python setup before progressing through statistical analysis, financial modeling, and specialized machine learning applications. You will read through detailed explanations and apply your knowledge through code-based exercises designed for real-world financial contexts.
This course is designed for beginners who are new to programming or financial data science. No prior coding experience or advanced finance knowledge is required to start.
Begin building your financial data science toolkit today.