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kausable GmbH in Heidelberg is seeking an ML Product Engineer to move promising research models into production-grade services, focusing on serving, evaluation, data flows, reliability, latency, and cost. You’ll bridge research and product, ensuring manufacturable, dependable capabilities for users.
You will collaborate with researchers and customers to expose failure modes and shape platform capabilities, while owning model releases and production monitoring in a growing footprint.
At kausable, we build causal, reasoning-first models that learn from a handful of examples and generalize across domains. Research gets us to a capable model. This role gets that model into the hands of users. As our ML Product Engineer, you own the path from a promising result in the lab to a dependable production capability: serving, evaluation, data flows, reliability, latency and cost. You will work at the boundary between research and product, where good technical judgment matters more than a clean handover.
You will define how kausable ships ML: the patterns, tooling and standards between research and production. As the team grows, the role can expand into technical ownership of the model-to-product stack or leadership of a small ML product group. The trade-off is part of the job: shipping quickly matters, but only when the resulting system remains measurable, reusable and dependable.
We are "Putting Science at the Core of AI". That means we: are scientists at heart, with a builder's mindset, are open to challenge, grounded in curiosity and respect, welcome diverse perspectives and value thoughtful, open debate, focus on outcomes and real-world impact, foster an environment of support, inspiration, and freedom for everyone to do their best work.
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