Manning Publications | Fighting Churn With Data: The Science And Strategy Of Customer Retention (2020 EN)

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  1. Kanka

    Kanka Well-Known Member Loyal User

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    Author: Carl S. Gold
    Full Title: Fighting Churn With Data: The Science And Strategy Of Customer Retention
    Publisher: Manning Publications; 1st edition (December 22, 2020)
    Year: 2020
    ISBN-13: 9781617296529 (978-1-61-729652-9)
    ISBN-10: 161729652X
    Pages: 504
    Language: English
    Genre: Educational: Data
    File type: EPUB (True), PDF (True), Code Files
    Quality: 10/10
    Price: $59.99


    The beating heart of any product or service business is returning clients. Don't let your hard-won customers vanish, taking their money with them. In Fighting Churn with Data you'll learn powerful data-driven techniques to maximize customer retention and minimize actions that cause them to stop engaging or unsubscribe altogether. This hands-on guide is packed with techniques for converting raw data into measurable metrics, testing hypotheses, and presenting findings that are easily understandable to non-technical decision makers.


    About the Technology:
    Keeping customers active and engaged is essential for any business that relies on recurring revenue and repeat sales. Customer turnover—or “churn”—is costly, frustrating, and preventable. By applying the techniques in this book, you can identify the warning signs of churn and learn to catch customers before they leave.

    About the book:
    Fighting Churn with Data teaches developers and data scientists proven techniques for stopping churn before it happens. Packed with real-world use cases and examples, this book teaches you to convert raw data into measurable behavior metrics, calculate customer lifetime value, and improve churn forecasting with demographic data. By following Zuora Chief Data Scientist Carl Gold’s methods, you’ll reap the benefits of high customer retention.

    What's inside:
    ✓ Calculating churn metrics
    ✓ Identifying user behavior that predicts churn
    ✓ Using churn reduction tactics with customer segmentation
    ✓ Applying churn analysis techniques to other business areas
    ✓ Using AI for accurate churn forecasting

    About the reader:
    For readers with basic data analysis skills, including Python and SQL.

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