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Member of Technical Staff, RL Infra

Inception Labs

Palo Alto, CAFull-timePosted 6mo agoStill listed 4 days ago

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At a glance

Compensation
No compensation found
Location
Palo Alto, CA
Schedule
Full-time
Work Authorization
Not specified

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Requirements

Credentials this posting asks for.

Bachelor's degree

Job overview

Inception creates the world’s fastest, most efficient AI models, seeking engineers and scientists to design, optimize, and maintain core systems that enable scalable, efficient reinforcement learning for large models.

Skills & qualifications

RequiredNice to have

Skills

Reinforcement LearningMachine LearningKubernetesReliabilityAirflowPyTorchTensorFlowRayMegatronDockerCI/CD PipelinesKubeflowPerformance OptimizationProfilingObservability Tools

Qualifications

Bachelor's in Computer Science or EquivalentReinforcement Learning Workload Experience

Benefits

Medical Insurance
Dental Insurance
Vision Insurance
Paid Time Off

Full job description

Member of Technical Staff, RL Infra Bay Area

AI Systems

In office

Full-time

Inception creates the world’s fastest, most efficient AI models. Our Mercury model is the world’s fastest reasoning LLM and first commercially available diffusion LLM, delivering 5x greater speed and efficiency than today’s LLMs, with best-in-class quality.

We are the AI researchers and engineers behind such breakthrough AI technologies as diffusion models, flash attention, and DPO.

The Role We're looking for engineers and scientists to design, optimize, and maintain the core systems that enable scalable, efficient reinforcement learning for large models. This role sits at the intersection of research and large-scale systems engineering: you'll wear many hats, from optimizing rollout and reward pipelines to enhancing reliability, observability, and orchestration, collaborating closely with researchers to make RL stable, fast, and production-ready.

Key Responsibilities

  • Design, build, and optimize the infrastructure that powers large-scale reinforcement learning and post-training workloads.
  • Improve the reliability and scalability of RL training pipelines, distributed RL workloads, and training throughput.
  • Develop shared monitoring and observability tools to ensure high uptime, debuggability, and reproducibility for RL systems.

Qualifications

  • BS/MS/PhD in Computer Science, Engineering, or a related field (or equivalent experience).
  • Understanding of ML frameworks (PyTorch, TensorFlow, Ray, Megatron) from a systems perspective.
  • Experience working with reinforcement learning workloads (PPO, DPO, RLHF, or reward modeling).
  • Experience with containerization (Docker), orchestration (Kubernetes), and CI/CD pipelines.

Preferred Skills

  • Experience building and maintaining large-scale language models with tens of billions of parameters or more.
  • Experience with ML workflow orchestration tools (Kubeflow, Airflow).
  • Background in performance optimization and profiling of ML systems.

Why Join Inception

  • Work with World-Class Talent: Collaborate with the inventors of diffusion models and leading AI researchers
  • Shape Foundational Technology: Your decisions will influence how the next generation of AI products are built and used
  • Immediate Impact: Join at the ground floor where your contributions directly shape product direction and company trajectory

Perks & Benefits

  • Competitive salary and equity in a rapidly growing startup
  • Flexible vacation and paid time off (PTO)
  • Health, dental, and vision insurance
  • Catered meals (breakfast, lunch, & dinner)
  • Commuter subsidies
  • A collaborative and inclusive culture

About Us Inception creates the world’s fastest, most efficient AI models. Today’s autoregressive LLMs generate tokens sequentially, which makes them painfully slow and expensive. Inception’s diffusion-based LLMs (dLLMs) generate answers in parallel. They are 5x faster and more efficient, while delivering best-in-class quality.

Inception was co-founded by Stanford professor Stefano Ermon, who co-invented such breakthrough AI technologies as diffusion models, flash attention, and DPO, UCLA professor Aditya Grover, who co-invented node2vec, decision transformers, and d1 reasoning, and Cornell professor and Afresh co-founder Volodymyr Kuleshov, who co-invented MDLM and Block Diffusion.

We pioneered the application of diffusion to language, with world’s first (and only) commercially available dLLM, Mercury. We are currently deploying our large-scale diffusion LLMs at Fortune 500 companies. Diffusion is the technology behind today’s image and video AI, and we’re making it the standard for LLMs as well.

Our team includes engineers from Google DeepMind, Meta AI, Microsoft AI, and OpenAI. Based in Palo Alto, CA, we are backed by A-list venture capitalists, including Menlo Ventures, Mayfield, M12 (Microsoft’s venture fund), Snowflake Ventures, Databricks, and Innovation Endeavors, and by tech luminaries such as Andrew Ng, Andrej Karpathy, and Eric Schmidt.

If you are talented, innovative, and ambitious, come help us invent the future of AI. We are an equal opportunity employer and encourage candidates of all backgrounds to apply.

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Req ID: R35

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