Engineering Manager – Production Inference
deepl · London
Job description
About the role
DeepL is looking for an Engineering Manager to lead the Production Inference team, responsible for delivering reliable, low‑latency model serving at scale. You will guide a group of research scientists and ML engineers, shaping both technical direction and people development.
Key responsibilities
- Lead and develop a high‑performing team, creating development plans and fostering a feedback‑rich culture.
- Own the research and development roadmap for production inference systems, balancing reliability commitments with long‑term efficiency research.
- Act as the primary technical liaison between Production Inference and adjacent functions such as foundational models, voice research, infrastructure, and product.
- Drive reliability, efficiency, and cost performance of the model serving stack, influencing load‑balancing, autoscaling, runtime selection and hardware utilisation.
- Identify, assess, and recruit research and engineering talent as the team grows.
Required profile
- Proven experience leading researchers or ML engineers, with a track record of talent development and delivery rigour.
- Strong background in Computer Science, Mathematics, Physics or a comparable quantitative discipline, or equivalent ML/systems expertise.
- Excellent communication skills, able to translate complex technical direction for both technical and non‑technical stakeholders.
- Solution‑oriented and decisive, capable of defining direction without waiting for higher‑level guidance.
Required skills
- Production ML systems
- Inference optimisation
- Model serving at scale
- LLM inference
- Speculative decoding
- Quantisation
- Serving infrastructure (load balancing, autoscaling, runtime selection)
- GPU inference runtimes and hardware utilisation
What we offer
- Diverse, internationally distributed team across more than 90 nationalities.
- Hybrid work schedule with flexible hours and two days per week in the office.
- Virtual Shares giving employees a stake in DeepL’s growth.
- Regular in‑person team events and monthly full‑day hack sessions.
- 30 days of annual leave plus mental‑health resources.
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Published 4 hours ago
Expires 1 month from now
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deepl
London