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Harmattan AI seeks an MLOps Engineer (Zurich/Lausanne/Paris) to own the training and evaluation pipelines, CI, and reproducibility. You will enable modelers to focus on models by standardizing infrastructure and tooling.
The role emphasizes responsible, scalable ML in a defense context, with cross-location collaboration and production-grade ML workflows. The candidate will contribute to a secure, auditable pipeline environment, enhance experiment tracking, and promote reusable templates while
Harmattan AI is a next-generation defense prime building autonomous and scalable defense systems. Following the close of a $200M Series B, valuing the company at $1.4 billion, we are expanding our teams and capabilities to deliver mission-critical systems to allied forces.
Our work is guided by clear values: building technologies with real-world impact, pursuing excellence in everything we do, setting ambitious goals, and taking on the hardest technical challenges. We operate in a demanding environment where rigor, ownership, and execution are expected.
Our ML teams build and optimize the models at the core of our autonomy stack. As a team scales, the workflow the models run on needs to move from a manual, organically grown setup onto a controlled, automated, and reproducible footing.
As an MLOps Engineer, operating out of Paris, Lausanne, or Zurich, you will own that machinery, across training and evaluation pipelines, CI, experiment tracking, and reproducibility, so that models are trained, benchmarked, and compared in a controlled and repeatable way. You free the modelers to focus on models rather than infrastructure, and you set the standard the team builds on.
We look forward to hearing how you can help shape the future of autonomous defense systems at Harmattan AI.