Master the analytical foundation that transforms data into product decisions. This Short Course equips product analysts with the systematic approach to hypothesis-driven investigation and the expertise to select optimal classification models for real-world scenarios. You'll learn to recall and apply the six-step hypothesis-driven analysis framework that guides investigations from question to conclusion, and evaluate critical trade-offs between decision trees and logistic regression based on interpretability, data characteristics, and preprocessing requirements. By completing this course, you'll confidently navigate model selection decisions, justify analytical approaches to stakeholders, and build reliable frameworks for product analytics that drive meaningful business outcomes.

您将学到什么
Hypothesis-driven frameworks add rigor, turning ad-hoc analysis into reliable, repeatable investigations stakeholders can trust.
Model selection balances interpretability, data traits, and preprocessing needs instead of relying on familiar algorithms.
Product analytics blends structured inquiry with evidence-based model choices to deliver insights that drive decisions.
Clear communication of analytical logic and model trade-offs is as vital as technical skill for product analytics success.
您将获得的技能
- Decision Making
- Scientific Methods
- Predictive Modeling
- Data Preprocessing
- Logistic Regression
- Analytical Skills
- Product Knowledge
- Model Evaluation
- Research
- Classification Algorithms
- Quantitative Research
- Decision Tree Learning
- Analysis
- Business Analytics
- Investigation
- Data Analysis
- Statistical Modeling
- 技能部分已折叠。显示 10 项技能,共 17 项。
要了解的详细信息
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该课程共有2个模块
Learners will master the systematic six-step framework that transforms ad-hoc product investigations into rigorous, reproducible analyses that stakeholders can trust and validate.
涵盖的内容
2个视频2篇阅读材料1个作业
Learners will master the critical evaluation skills needed to select optimal classification models for product analytics scenarios by systematically comparing decision trees and logistic regression based on interpretability, data characteristics, and preprocessing requirements.
涵盖的内容
2个视频2篇阅读材料3个作业
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