Product ML Engineer
PhotoroomAbout the role
About us Founded in 2019 and part of Y Combinator's 2020 cohort, Photoroom is the leading visual solution for e-commerce. We've raised Series B funding and reached 300+ million users worldwide, processing over 5 billion images annually and serving both small businesses and major enterprises like Amazon, DoorDash, and Decathlon through our mobile app, web platform, and API. We're a remote-friendly team of 100+ passionate builders giving e-commerce businesses superpowers to create visuals that help them grow, making the hardest parts of selling online disappear. We focus on craft, innovation, and collaboration, creating exceptional impact for e-commerce businesses worldwide. Role Summary We're looking for a Product ML Engineer to join one of our product experience teams — SMB, Scaler or Enterprise — and own the ML side of short, high-impact projects. You'll work on focused ML problems with a clear product outcome, sometimes fine-tuning one of our models, sometimes integrating the best externally available model, but always choosing the fastest and most effective path to customer value. You'll bring the technical depth of an Applied Scientist while operating with the pace and pragmatism of a product engineer. You'll own the journey from framing the problem through to shipping, measuring and iterating on the feature in production. This is not a research role. Your time horizon is weeks rather than quarters, and success is measured by what reaches users and the impact it creates. About the role Embed directly within a product team. Work closely with the SMB, Scaler or Enterprise team on focused ML problems tied to clear customer and business outcomes. Own ML projects end to end. Frame the problem, choose the approach, execute the plan, ship the feature and monitor its performance in production. Make the build vs. buy decision. Determine when to fine-tune or build a model yourself versus integrating an external model, API or existing library. Move from idea to production quickly. Work on projects scoped in weeks rather than quarters, prioritising rapid iteration and customer impact. Work closely with the ML team. Leverage shared infrastructure, evaluation tooling and expertise while remaining embedded in the product team's priorities and cadence. Stay close to users. Get rapid feedback from customers, monitor how people use what you've shipped and use those insights to drive the next iteration. Balance technical depth with pragmatism. Know when deeper modelling work is necessary and when an existing solution is already good enough to ship. Write production code. Work directly in the product team's codebase rather than operating primarily through research notebooks and experiments. Own quality in production. Build sound evaluations, monitor performance and investigate failures once the feature is live. About You You've shipped ML into production. You have 2+ years of hands-on experience building and shipping ML-powered products, with strong experience i
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