Machine Learning Modelling: Build and Evaluate Predictive Models
Learn to build, train, and evaluate foundational machine learning models using Python to solve real-world prediction and classification problems.
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🕐いつでも開始 スケジュールも締め切りもなし。自分のペースで、好きなときに学べます。
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このコースについて
Every day, organizations across finance, healthcare, and retail use data to predict future trends and automate decision-making. Understanding how to build and train machine learning models is the key to unlocking these data-driven insights. This text-based course guides you from machine learning novice to a practitioner capable of preparing data, training models, and interpreting predictions. You will gain a solid grasp of the core concepts behind popular algorithms, allowing you to confidently apply them to real-world datasets.
What you'll learn:
- Understand the fundamental concepts of supervised learning, including the differences between regression and classification.
- Build and train linear regression models to predict continuous numerical values.
- Implement logistic regression and Naive Bayes classifiers to solve categorization problems.
- Apply modern feature engineering and data preprocessing techniques to prepare raw data for training.
- Evaluate model performance using professional metrics like precision, recall, F1-score, and confusion matrices.
- Construct clean, reproducible machine learning pipelines to streamline your workflow.
You will start by exploring foundational machine learning theory and basic terminology before moving step-by-step through regression and classification algorithms. Each concept is reinforced with clear written explanations and practical code walkthroughs using industry-standard Python libraries. This course is designed for aspiring data analysts, software developers, and beginners who want a clear, conceptual, and practical introduction to machine learning without needing prior ML experience.
Start your journey into machine learning and begin building your first predictive models today.