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#134 Building Great Machine Learning Products at Opendoor

DataFramed

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Building User-Centric Machine Learning in Real Estate

This chapter explores the essential traits of successful machine learning products, particularly in the real estate sector, with a focus on user behavior and feedback loops. It discusses Opendoor's mission to enhance the home selling process through algorithmic precision and how understanding user motivations and data discrepancies is crucial for predictive accuracy. Furthermore, the significance of model interpretability and emotional trust is emphasized as key components in fostering user engagement and improving overall product effectiveness.

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