WaymoMountain View, California, USA$70-$70/hr
Black Forest LabsPosted 24mo ago
Member of Technical Staff - Model Serving / API Backend Engineer
Member of Technical Staff - Model Serving / API Backend Engineer at Black Forest Labs scores 97 out of 100 on AI centrality, which makes it a Level 4 role on this board.
AI in this role
About Black Forest Labs
We're the team behind Latent Diffusion, Stable Diffusion, and FLUX—foundational technologies that changed how the world creates images and video. We’re creating the generative models that power how people make images and video—tools used by millions of creators, developers, and businesses worldwide. Our FLUX models are among the most advanced in the world, and we're just getting started.
Headquartered in Freiburg, Germany with a growing presence in San Francisco, we're scaling fast while staying true to what makes us different: research excellence, open science, and building technology that expands human creativity.
Why This Role
Our research team moves fast. Models improve weekly. New capabilities emerge constantly.
What slows us down is not model quality—it’s productionization.
Without this role:
Research checkpoints sit longer before becoming usable APIs
Inference is slower than it needs to be
APIs struggle under load
Demos don’t reflect the true potential of our models
This role removes the bottleneck between frontier research and production reality. Once hired, researchers ship faster, demos launch faster, and customers experience models at their best.
What You’ll Work On
You will own the bridge between research breakthroughs and production systems.
Turn research checkpoints into production-ready inference services
Design and maintain high-performance APIs serving millions of requests
Optimize inference latency and throughput across GPU infrastructure
Build scalable serving architectures that handle unpredictable traffic
Improve reliability, monitoring, and observability across model-serving systems
Prototype and ship demos that showcase new capabilities in days, not weeks
Collaborate closely with researchers to move from idea to live endpoint rapidly
Tools & Context – Model Serving & API Infrastructure
Python, FastAPI, async systems
GPU infrastructure, CUDA, inference optimization
Docker and Kubernetes
Redis, Postgres, distributed task queues
Cloud platforms (AWS, GCP, or Azure)
Observability stacks (metrics, logging, tracing)
This role spans backend systems, GPU performance, and production ML serving.
What We’re Looking For
You’ve built and operated systems at meaningful scale. You understand the difference between a research prototype and a production system. You are comfortable navigating ambiguity, making tradeoffs, and improving systems under real-world constraints.
You demonstrate:
Strong judgment around performance, reliability, and cost tradeoffs
Experience scaling APIs or ML systems under load
Comfort working in fast-moving, research-adjacent environments
Ownership from system design through debugging and deployment
Role-specific experience we value:
Building and operating ML inference services in production
Designing scalable API architectures with async processing
Optimizing GPU workloads (batching, quantization, compilation, CUDA)
Managing distributed systems and task queues under variable load
Implementing monitoring and observability for production ML systems
Debugging performance bottlenecks across model, infrastructure, and network layers
Bonus experience includes:
Real-time or low-latency inference systems
TensorRT, reduced precision, layer fusion, or model compilation techniques
Frontend demo tooling (Streamlit, Gradio, React)
CI/CD and automated testing for ML systems
Security best practices for API and model serving
How We Work Together
We’re a distributed team with real offices that people actually use. Depending on your role, you’ll either join us in Freiburg or SF at least 2 days a week (or one full week every other week), or work remotely with a monthly in-person week to stay connected. We’ll cover reasonable travel costs to make this possible. We think in-person time matters, and we’ve structured things to make it accessible to all. We’ll discuss what this will look like for the role during our interview process.
Everything we do is grounded in four values:
Obsessed. We are a frontier research lab. The science has to be right, the understanding deep, the product beautiful.
Low Ego. The work speaks. The best idea wins, no matter who said it. Credit is shared. Nobody is above any task.
Bold. We take the ambitious bet. We ship, we do not wait for conditions to be perfect.
Kind. People over politics. We treat each other with genuine warmth. Agency without empathy creates chaos.
Base Annual Salary: $180,000–$300,000 USD
We're based in Europe and value depth over noise, collaboration over hero culture, and honest technical conversations over hype. Our models have been downloaded hundreds of millions of times, but we're still a ~50-person team learning what's possible at the edge of generative AI.
Note: Our recruitment process uses AI-assisted tools to help manage and organize applications. All hiring decisions are always made by our team.
Prepare for this job
A free preview built only from this posting: what it asks for, what you could be asked in an interview, and how to adjust your resume.
Skills and AI tools this role asks for
Questions you could be asked
- What's a project where you used Stable Diffusion hands-on?
- How would you decide a model or AI system is ready to ship?
- Tell me about a time a model underperformed in production. How did you find out, and what did you change?
Adapt your resume
- List these exact terms on your resume: Stable Diffusion. An applicant tracking system matches the wording, not the idea.
- Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
- Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.
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