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📊 Data-Driven Decisions: ML in E-Commerce Forecasting with Federico Bacci

The MLOps Podcast

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Navigating Demand Forecasting in E-Commerce

This chapter examines the deployment of a demand forecasting model for iPhone sales, covering data acquisition, quality checks, and training methodologies. It highlights various deployment strategies like shadow and A/B testing and their dependence on user volume, while also discussing the challenges of integrating live feedback into model performance. The importance of explainability in machine learning is emphasized, particularly in translating complex forecasting insights for non-technical stakeholders.

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