Learn how to build, evaluate, and apply predictive machine learning models to solve real-world data analysis problems using Python.
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このコースについて
Every organization sits on a goldmine of data, but the real value lies in predicting what happens next. Transitioning from describing past trends to forecasting future outcomes is the core of modern predictive data analysis. This text-based course helps you bridge that gap by teaching you the fundamentals of machine learning.
In this course, you will learn how to transition from standard data analysis to building predictive machine learning models. You will gain the skills to prepare datasets, train supervised learning algorithms, and evaluate their performance with confidence.
What you'll learn:
- Understand foundational machine learning terminology, core concepts, and the predictive modeling workflow
- Prepare and clean structured datasets using modern dataframe libraries for machine learning pipelines
- Implement and train key supervised learning models, including regression and classification algorithms
- Evaluate model performance accurately using metrics like precision, recall, and mean squared error
- Apply best practices for model validation, splitting datasets, and avoiding overfitting
- Establish reproducible workflows to ensure your predictive models are reliable and consistent
The course starts with essential terminology and foundational definitions before guiding you step-by-step through data preparation, algorithm selection, and model training. You will progress from simple conceptual frameworks to implementing practical predictive workflows through written explanations and code examples.
This course is designed for beginning data analysts and aspiring data scientists who want to add predictive modeling to their toolkit. No prior machine learning experience is required.
Start your journey into predictive data analysis and unlock the forecasting potential of your data today.
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📱スマホでもPCでも どこでもどんな端末でも
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⚡短く要点だけ 2時間48分の実践的な内容
レビュー (6)
صالح بن عبد الله
SA
★ 5 · 06.09.2026
A good introduction. The structure was mostly clear, but I wish there were a few more real-world examples. Still, learned a lot.