Gradient Dissent: Conversations on AI cover image

D. Sculley — Technical Debt, Trade-offs, and Kaggle

Gradient Dissent: Conversations on AI

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You Can Imagine a Lot, Machine Learning Engineers

You can imagine things like an upstream producer of a given signal suddenly going offline. And if you're not really careful about making sure that alerting and things like that are also being propagated transitively, you're not going to know until it's still in seeding your production data. Coding defensively on data often looks like monitoring of your input data distributions,. checking for things like sudden changes in input data, excuse or streams.

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