Research Scientist / Engineer - Reinforcement Learning Infrastructure
Luma
You'll build the systems that make reinforcement learning work at frontier scale — coupling policy optimization with large fleets of inference workers, agentic environments, and the reward and verification systems that turn model behavior into learning signal. RL is how Luma's models go from capable to useful. RL at scale is a full-loop systems problem: training, rollout generation, environment execution, and reward computation running concurrently across thousands of GPUs, all needing to stay fast, stable, and correct together. It fits someone who has lived this — post-trained LLMs with RL, built environments and verifiers, and debugged asynchronous rollout pipelines at scale. If you haven't operated RL at real scale, this will be deep water. What You'll Own Design, build, and scale distributed RL post-training systems, orchestrating trainer, rollout, environment, and reward workloads across thousands of GPUs. Build high-throughput rollout generation, integrating inference engines (vLLM, SGLang), weight synchronization, and asynchronous/off-policy schemes. Design RL environments for agentic, multi-step tasks — sandboxed code execution, tool use, computer use, multimodal interaction — reproducible and scalable to millions of episodes. Build reward infrastructure: verifiable/programmatic rewards, reward-model serving, LLM-as-judge pipelines, and defenses against reward hacking. Develop the evaluation, monitoring, and debugging tooling that keeps large RL runs stable. Advance training efficiency and stability, and turn new post-training ideas into production runs with researchers. First 90 Days One way the first 90 could unfold. Days 1–30 – Immerse & Diagnose: Learn the current RL stack and where throughput, stability, or correctness break. Days 30–60 – Ship & Validate: Improve a piece of the loop (rollout throughput, reward infra, or an environment) and prove it on a real run. Days 60–90 – Scale & Systemize: Harden the full loop across thousands of GPUs and asynchronous architectures. What You Bring Hands-on experience post-training LLMs with RL (PPO/GRPO-family, RLHF, RLVR) at meaningful scale. Extensive distributed PyTorch training and parallelism (FSDP, Tensor/Pipeline/Expert Parallel) for foundation models. Experience building RL environments, reward functions, verifiers, or evaluation harnesses for LLM agents, including sandboxed execution and multi-turn tool use. Deep familiarity with RL post-training frameworks (veRL, OpenRLHF, TRL, Ray orchestration) and rollout inference engines (vLLM, SGLang). Strong understanding of GPU clusters, networking, and communication libraries (NCCL, MPI) under mixed training and inference workloads. Nice to Have Running RL training across 100+ GPUs, including asynchronous or disaggregated trainer/rollout architectures. Containerization and orchestration (Kubernetes, Ray) for large environment fleets and sandboxed workloads. Research contributions in RL for LLMs, or open-source contributions to RL training frameworks. About Luma: Luma's mission is to build unified general intelligence that can generate, understand, and operate in the physical world. We believe multimodality is critical for intelligence — the next step beyond language models comes from vision. Luma is an equal opportunity employer. #J-18808-Ljbffr Luma
- ...across thousands of GPUs, so researchers can focus on innovation on... ...reliable, efficient, scalable infrastructure. This is hard PyTorch, CUDA,... ...clusters. It fits an engineer who's solved real problems training... ...1-30 - Immerse & Diagnose: Learn the current training stack and...Suggested
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$175k - $250k
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...ML Researcher And EngineerWindBorne Systems is supercharging weather... ...founding team of Stanford engineers was named Forbes 2019 30 Under... ...unusually rich machine learning problems: enormous, messy datasets... ...1% of model improvement.Infrastructure and systems — Turn successful...Suggested$115.71k - $172.12k
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- ...Research Engineer On EvaluationsYou'll own the infrastructure that tells Luma whether its models are getting better. As a Research Engineer on Evaluations... ...evaluation signals into training loops, including reinforcement learning and reward modeling, to keep improving the...
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Machine Learning Research Engineer, Applied Research WindBorne Systems is supercharging weather forecasts with a unique proprietary data source: a global constellation of next-generation smart weather balloons targeting the most critical atmospheric data. We design, manufacture...Work at office$250k - $350k
MACHINE LEARNING RESEARCH ENGINEER San Francisco, CA Hybrid $250K-$350K Join the Data Revolution at Prophecy About Prophecy Prophecy is revolutionizing... ...experience with pipelines and microservices Cloud infrastructure expertise: AWS, Kubernetes Proficiency in Java and Scala...Remote workWorldwideFlexible hours$160.36k - $240.54k
...multi-modality generation.Optimize generative models using reinforcement learning to improve interactive reasoning. Explore reward modeling/learned... ...with generative models in the lab, in industry, or both.Research experiences in generative models, particularly diffusion...Immediate startFlexible hours$160.36k - $240.54k
...investors.About the RoleThe mandate of the learned behavior team is to use advanced... ...to solve long tail problems, adjusting reinforcement learning techniques for motion planning... ...feasible trajectories for autonomous driving.Research generative sequence modeling and...Immediate startFlexible hours$174k - $252k
Drive post-training research and engineering using reinforcement learning (RL) and supervised fine-tuning (SFT) to advance Gemini coding capabilities across... ...agentic coding capabilities.Implement training infrastructure, reward models, and data curation workflows to accelerate...$174k - $252k
...seeking a highly motivated Research Engineer (L5) with a strong... ..., we’re a team of scientists, engineers, machine learning experts and more, working... ...collaboration.Contribute to Infrastructure: Inform and contribute... ....Familiarity with Reinforcement Learning or alignment...Full time$180k - $300k
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$120k - $250k
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...Research EngineerAt DatologyAI, we've built a state of the... ...days a week.As a Research Engineer, you will play a crucial... ...design the experimentation infrastructure that lets scientists iterate quickly at scale,... ....Enough machine learning depth to collaborate substantively...Work at officeWork from homeRelocation package- ...investors. The Role Our models don't stop learning at deployment. A growing fleet of... ...at a new customer site, forever" is a research problem, not just an ops one. As an Applied... ...‑visible. RL for Deployment: Apply reinforcement learning (offline RL, RL fine‑tuning, reward...Full time
$150k - $200k
...your skills and experience — talk with your recruiter to learn more. Base pay range $150,000.00/yr - $200,000.00/yr Shape... ...for enterprise-grade language models. Responsibilities As a Research Scientist/ ML Engineer, you will play a crucial role in conducting and enabling...Full time- ...looking for an exceptional Research Scientist to develop next-generation... ...on user representation learning, semantic understanding, and... ...while working closely with engineering teams to translate... ...Collaborate with platform and infrastructure engineers to deploy production...Full timeInternshipLocal area
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$174k - $252k
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Scope and drive research efforts to improve complex frontier... ...supervised fine-tuning and reinforcement learning experiments to improve the... ...product contribution and infrastructure goals, while providing individuals... ...of work. As a Research Scientist, you'll setup large-scale...$112.88k - $149.57k
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