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Modal

San Francisco / Global

Customer Engineer

Job Description

The RoleWe're looking for engineers with deep AI/ML and low-level systems experience who want to build the best technical support experience in the world. This isn't a traditional support role — it's an engineering role where you happen to be closest to our customers.You'll split your time roughly 50/50 between working directly with customers and shipping fixes, features, and automation that improve Modal for everyone. When you help a customer debug a training run, you'll also fix the underlying issue in the platform. When you notice ten customers hitting the same friction point, you'll build the tooling or automation that eliminates it entirely.This role is for people who solve problems, not people who answer tickets. The problems you encounter are deeply technical and arise from running some of the most demanding AI workloads in the world. You'll be a member of our engineering team, contributing production code alongside the engineers building the core platform. The difference is that your roadmap is shaped by what you learn at the frontier of customer experience. You will:Ship code that matters. Fix bugs, build features, and create automation that improves the experience for every Modal user — not just the one who reported the issue.Work directly with customers. Help developers and ML engineers debug, optimize, and architect their workloads across Slack, email, and calls.Build scalable systems. Design tooling, dashboards, and automated workflows that make support efficient at scale — delighting customers at the most important moments.Close the feedback loop. Translate patterns you see in the field into concrete improvements — docs fixes, API changes, or new feature proposals.Contribute to open source and technical content. Write examples, build demos, and publish content that helps the broader community succeed on Modal.RequirementsAccomplished in key areas. You bring depth in either low-level infrastructure or ML/AI, and you're not lost in the other.Low-level infrastructure experience. Operating systems, file systems, networking, performance profiling, cluster management and distributed systems.AI/ML engineering experience. Training models, optimizing inference, working with GPUs, or building ML infrastructure.Automation mindset. Your instinct when you see a manual process is to eliminate it and you have the engineering background to make that happen.Clear communicator. Can explain a systems issue to a customer, write a crisp bug report, and draft documentation, all while collaborating internally to ship improvements.

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