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ML Product Engineer

in 69115, Heidelberg, Baden-Württemberg, Deutschland
Unternehmen: kausable
Vollzeit position
Verfasst am 2026-09-14
Berufliche Spezialisierung:
  • Software Entwicklung
    Künstliche Intelligenz Ingenieur, Maschinelles Lernen, Python, DevOps Ingenieur
Gehalts-/Lohnspanne oder Branchenbenchmark: 90000 - 120000 EUR pro Jahr EUR 90000.00 120000.00 YEAR
Stellenbeschreibung

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.

Tasks
  • Turn research models into production-grade services with clear reliability, latency and cost targets.
  • Build evaluation harnesses and release criteria that show quantitatively when a model is ready to ship.
  • Design the data pipelines, versioning and observability needed across training, evaluation and live inference.
  • Build stable APIs and developer-facing abstractions around our models.
  • Work closely with researchers to expose failure modes and turn product feedback into better models and evaluations.
  • Translate customer and design-partner needs into reusable platform capabilities rather than one-off solutions.
  • Own model releases, monitoring and rollback patterns as the production footprint grows.
Requirements
  • A track record of shipping ML-powered systems to production and operating them after launch.
  • Strong software engineering skills in Python and hands-on fluency with PyTorch.
  • Experience with model serving, APIs, containers and cloud infrastructure.
  • Sound judgment around evaluation, observability, reliability and production trade-offs.
  • The ability to work directly with customers, researchers and product stakeholders.
  • A pragmatic, outcome-oriented mindset: you optimize for dependable capabilities that users can actually adopt.
  • We are primarily hiring at senior level. We are also open to exceptional candidates with fewer years of experience who can demonstrate comparable depth, judgment and ownership.
Nice to have
  • In-context learning, PFNs, synthetic data or probabilistic models.
  • Weights & Biases, model registries, CI for models or comparable MLOps tooling.
  • SDK or developer-tooling design.
  • Security, privacy or on-premise deployment requirements.
  • Prior startup, design-partner or 0-to-1 product experience.
Benefits Where This Can Go

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.

Our Culture
  • 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.
Perks & Benefits
  • VSOP equity: a real stake in what we build.
  • 30 days of paid holiday per year.
  • Statutory social insurance.
  • Conference travel and role-relevant learning.
  • Flexible hybrid work, with roughly one in-person team meet-up per month.
  • A high-end laptop and access to the cloud compute required for the role.
Tools and Infrastructure
  • Python and PyTorch.
  • Weights & Biases and model-evaluation tooling.
  • Docker, AWS, Run Pod and comparable cloud infrastructure.

If it's a match, we'll get to know each other over a number of online interviews, followed by an onsite day where we go in depth.

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