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In diesem Kurs gibt es 8 Module
You'll learn to analyze user behavior through advanced segmentation and retention techniques that directly impact business decisions. By completing this course, you'll gain the expertise to identify distinct user groups using clustering algorithms, design statistically valid A/B tests, and calculate retention metrics that guide product strategy.
You'll benefit professionally by developing skills that make you invaluable to product teams and growth organizations. What makes this unique is the integration of unsupervised learning, experimental design, and survival analysis - combining technical data science skills with business-focused analytics. You'll work with real user data to create actionable insights that drive user engagement and optimize product performance across different acquisition channels.
You will learn k-means clustering implementation using scikit-learn to segment users based on RFM variables, enabling them to create data-driven user profiles that inform product strategy and targeted interventions.
K-Means Clustering Fundamentals for Customer Analytics•10 Minuten
RFM Analysis Framework: Strategic Customer Segmentation for Product Analytics•10 Minuten
2 Aufgaben•Insgesamt 33 Minuten
Build Customer Segments Using K-Means Clustering•18 Minuten
User Clustering and RFM Analysis Knowledge Check•15 Minuten
Retention Method Evaluation - Core Application
Modul 2•1 Stunde abzuschließen
Moduldetails
You will analyze different retention calculation methodologies, understand their strategic implications, and create technical recommendations that guide data-driven retention strategy decisions in product analytics contexts.
Das ist alles enthalten
2 Videos1 Lektüre3 Aufgaben
Infos zu Modulinhalt anzeigen
2 Videos•Insgesamt 13 Minuten
Why Retention Methodology Choice Impacts Business Strategy•5 Minuten
Calculating and Interpreting Different Retention Metrics•8 Minuten
1 Lektüre•Insgesamt 10 Minuten
Rolling-Cohort vs N-Day Retention: Core Concepts•10 Minuten
3 Aufgaben•Insgesamt 38 Minuten
Compare Retention Methods and Create Technical Recommendations •20 Minuten
User Segmentation and Retention Analysis Mastery•15 Minuten
Evaluate Experiment Bias Sources
Modul 3•1 Stunde abzuschließen
Moduldetails
You will systematically identify and assess bias sources that compromise A/B test validity, focusing on novelty effects and exposure inequality detection.
Understanding Common Bias Sources in A/B Testing•9 Minuten
Detecting Bias in Real A/B Test Data: A Step-by-Step Demonstration•8 Minuten
1 Lektüre•Insgesamt 7 Minuten
Practical Bias Detection Framework for Experiment Validation•7 Minuten
2 Aufgaben•Insgesamt 13 Minuten
Evaluate Netflix Engagement Experiment for Bias Sources•10 Minuten
Bias Detection Knowledge Check•3 Minuten
Design Statistically Valid Experiments
Modul 4•1 Stunde abzuschließen
Moduldetails
You will apply power analysis principles to calculate appropriate sample sizes and design experiments that reliably detect meaningful business impacts.
Das ist alles enthalten
3 Videos1 Lektüre3 Aufgaben
Infos zu Modulinhalt anzeigen
3 Videos•Insgesamt 20 Minuten
Why Statistical Rigor Drives Business Success in A/B Testing•4 Minuten
Calculating Sample Sizes: Power Analysis in Practice•9 Minuten
Using Statistical Calculators for Experiment Design•7 Minuten
1 Lektüre•Insgesamt 10 Minuten
Power Analysis Fundamentals for Reliable Business Experiments•10 Minuten
3 Aufgaben•Insgesamt 25 Minuten
Design Power Analysis for Meta Advertising Platform Experiment•12 Minuten
Power Analysis and Sample Size Knowledge Check•3 Minuten
Statistical Power Analysis Mastery Assessment•10 Minuten
Cohort Analysis Foundations
Modul 5•1 Stunde abzuschließen
Moduldetails
You will move beyond “vanity metrics” to master Cohort Analysis—the essential framework for measuring how effectively your product retains users over time. By grouping users based on shared characteristics, most commonly their acquisition date, you will construct and interpret Cohort Heatmaps to track behavior patterns and pinpoint exactly where users drop off in their lifecycle. This approach provides the mathematical clarity needed to separate temporary growth spikes from true product-market fit, enabling you to calculate precise Retention Rates and visualize the “long tail” of user stability through Retention Curves.
Cohort Analysis Fundamentals for Data Professionals•6 Minuten
2 Lektüren•Insgesamt 13 Minuten
Segmentation Methodologies in Cohort Analysis •8 Minuten
How to Use Channel-Segmented Cohort Analysis to Optimize Marketing Spend•5 Minuten
2 Aufgaben•Insgesamt 13 Minuten
Cohort Analysis Fundamentals Assessment•3 Minuten
Build and Analyze Acquisition Channel Cohorts•10 Minuten
Retention Pattern Analysis
Modul 6•1 Stunde abzuschließen
Moduldetails
You will move beyond simple tracking to diagnose the "shape" of your user behavior and identify the underlying drivers of long-term loyalty. In this section, we analyze the specific geometry of your retention curves—distinguishing between the "Sinking Ship" of a declining curve and the "Growth Engine" of a flattened or "smiling" curve—to determine if your product has achieved true product-market fit. You will learn to perform behavioral layering to uncover the "Aha! Moment," that specific set of actions that separates your power users from those who churn, allowing you to optimize the user journey around the activities that mathematically correlate with the highest lifetime value.
Das ist alles enthalten
2 Videos2 Lektüren2 Aufgaben
Infos zu Modulinhalt anzeigen
2 Videos•Insgesamt 10 Minuten
The Business Impact of Pattern Recognition in Retention Analysis•4 Minuten
Interpreting Retention Curve Patterns and Decay Rates•6 Minuten
2 Lektüren•Insgesamt 12 Minuten
Systematic Approaches to Seasonal vs. Fatigue Pattern Diagnosis•7 Minuten
How to Diagnose Retention Drops: Seasonal Behavior vs. Product Problems•5 Minuten
You will apply Kaplan-Meier survival analysis to evaluate user retention patterns over time, create survival plots in R with statistical testing to compare groups, and integrate analytical findings into experiment readouts that mirror real-world data analyst deliverables for stakeholder communication.
Das ist alles enthalten
2 Videos2 Lektüren3 Aufgaben
Infos zu Modulinhalt anzeigen
2 Videos•Insgesamt 17 Minuten
Why Netflix and Spotify Research Use Survival Analysis for Strategic Decisions•6 Minuten
Reading and Comparing Kaplan-Meier Survival Curves Between Groups•11 Minuten
2 Lektüren•Insgesamt 22 Minuten
Kaplan-Meier Methodology for Comparing User Retention Between Groups•10 Minuten
Kaplan-Meier Survival Analysis in R: A How-To Guide•12 Minuten
3 Aufgaben•Insgesamt 36 Minuten
Create Survival Analysis for Experiment Readout•18 Minuten
Project: User Segmentation, Experimentation, and Retention Analytics
Modul 8•2 Stunden abzuschließen
Moduldetails
You will conduct a comprehensive product analytics project that integrates user segmentation, experimentation design, and retention analysis to deliver actionable insights for optimizing product engagement and user retention strategies.
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