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Principal ML Platform Engineer

Synthesia · Europe

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기업 공고 원문에서 · Synthesia · 2026년 4월 8일 게시

Synthesia is the world’s leading AI video platform for business, used by over 90% of the Fortune 100. Founded in 2017, the company is headquartered in London, with offices and teams across Europe and the US. As AI continues to shape the way we live and work, Synthesia develops products to enhance visual communication and enterprise skill development, helping people work better and stay at the center of successful organizations. Following our recent Series E funding round, where we raised $200 million, our valuation stands at $4 billion. Our total funding exceeds $530 million from premier investors including Accel, NVentures (Nvidia's VC arm), Kleiner Perkins, GV, and Evantic Capital, alongside the founders and operators of Stripe, Datadog, Miro, and Webflow. We’re looking for a Principal Engineer to join the ML Platform team at Synthesia. Our team builds and operates the systems that allow researchers and product teams to train, serve, and deploy generative models reliably and efficiently . This includes research infrastructure, production serving systems, internal tooling, and the platform interfaces that connect them. A growing part of our mission is making these systems more automation-friendly and agent-oriented , so that workflows can increasingly be operated through reliable tooling rather than manual effort. We’re looking for a strong generalist with a systems mindset: someone who is comfortable working across infrastructure, backend systems, and tooling, and who has seen ML systems in practice. this is not a pure ML Engineer role. We’re especially interested in people who think deeply about reliability, scalability, performance, and resource efficiency in complex production environments. This is a hands-on IC role with significant ownership. You’ll help shape how our ML platform evolves as we scale the number of models, workloads, tools and teams relying on it. What you’ll do Design and improve the platform systems that support model training, evaluation, and production serving. Build infrastructure and tooling that make ML workloads more reliable, scalable, and cost-efficient. Develop internal tools and workflows that are easy to operate both by humans and by agents . Work on the architecture behind how models are deployed, served, and operated across research and product environments. Improve how we schedule, monitor, and debug workloads running on GPUs and cloud infrastructure. Develop internal tools and abstractions and agentic systems that reduce operational overhead for researchers and engineers. Drive improvements across observability, automation, reliability, and developer experience. Collaborate closely with researchers and product engineers to understand pain points and turn them into robust platform capabilities. Contribute to technical direction and make pragmatic architectural tradeoffs as the platform grows. You’ll thrive in this role if you have Strong experience building or operating production systems with a focus on reli

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Research and Development

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