ML is much more of an art and a science than ML in production. A lot of people get stuck, not because of tooling, but because of internal processing or the temptation of being perfect first. We always press this end-to-end ML person. The M2N ML person doesn't know infrastructure, doesn't know Kubernetes,. But it knows how distributed SQL query runs. Even if it doesn't know how to provision GPU, know what is Metaflow will do it for you.

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