How Data Drift Makes Models Go Stale episode artwork

EPISODE · May 23, 2026 · 5 MIN

How Data Drift Makes Models Go Stale

from The Data Science Podcast with Fexingo: Analytics, Machine Learning, and Data-Driven Conversations · host Fexingo

Machine learning models don't break the way software does. They rot slowly, like fruit left on the counter. In this episode, Lucas and Luna explore a real-world case from a fintech lending company that deployed a fraud detection model in late 2024. By February 2026, the model's precision had dropped from 92% to 61% — not because of a bug, but because borrower behavior shifted. This is data drift: the gap between training data and live data. Lucas explains the two types — covariate shift and concept drift — and walks through the fintech's post-mortem. They discuss detection methods, monitoring dashboards, and the hard decision to retrain or rebuild. Luna asks the crucial question: if drift is inevitable, why don't more teams bake monitoring into their MLOps pipeline from day one? By the end, listeners understand why drift is the silent killer of production models — and how to spot it before it costs real money. #DataDrift #ModelMonitoring #MLOps #MachineLearning #DataScience #FraudDetection #Fintech #CovariateShift #ConceptDrift #ModelDegradation #ProductionML #ModelRetraining #DataQuality #MLInfrastructure #FexingoBusiness #BusinessPodcast #Technology #Analytics Keep every episode free: buymeacoffee.com/fexingo

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How Data Drift Makes Models Go Stale

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How long is this episode of The Data Science Podcast with Fexingo: Analytics, Machine Learning, and Data-Driven Conversations?

This episode is 5 minutes long.

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This episode was published on May 23, 2026.

What is this episode about?

Machine learning models don't break the way software does. They rot slowly, like fruit left on the counter. In this episode, Lucas and Luna explore a real-world case from a fintech lending company that deployed a fraud detection model in late 2024....

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