Fraud detection without feature engineering



Fraud detection without feature engineering

Fraud detection without feature engineering


Video description

In many industrial ML applications, feature engineering consumes the lion’s share of time, energy, and resources. Deep learning promises to replace feature engineering with models that learn end to end from “close-to-reality” data and has convincingly realized this promise for computer vision and natural language processing. But does this promise apply outside of these domains?

Pamela Vagata (Stripe) explains how Stripe has applied …


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