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You Do Not Need a Bigger Boat: Recommendations at Reasonable Scale in a (Mostly) Serverless and Open Stack

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arxiv 2107.07346 v1 pith:NQ6TGT2Q submitted 2021-07-15 cs.LG

classification cs.LG
keywords dataleveragingopenreasonablescaleserverlessstackargue
verification ladder T0 review T1 audit T2 compute T3 formal
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We argue that immature data pipelines are preventing a large portion of industry practitioners from leveraging the latest research on recommender systems. We propose our template data stack for machine learning at "reasonable scale", and show how many challenges are solved by embracing a serverless paradigm. Leveraging our experience, we detail how modern open source can provide a pipeline processing terabytes of data with limited infrastructure work.

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