Staff Site Reliability Engineer

Posted 8 Days Ago
Be an Early Applicant
Menlo Park, CA, USA
In-Office
Expert/Leader
Artificial Intelligence • Healthtech
The Role
Design and operate a GPU management and scheduling platform for approximately 30 AI models across heterogeneous hardware. Build metrics pipelines, admission control, autoscaling, cloud orchestration, infrastructure automation, deployment pipelines, and monitoring systems. Develop production software in Python and Go, operate secure fault-tolerant cloud infrastructure, enforce healthcare security and compliance policies, troubleshoot complex issues, and mentor engineers.
Summary Generated by Built In
About the Role

We're looking for a Staff Site Reliability Engineer who is equally at home writing production software and running the infrastructure it lives on — and who wants to take ownership of one of the hardest, highest-leverage problems on our platform: intelligently managing a large fleet of GPU-backed models.

We run nearly 30 models across heterogeneous hardware, and keeping that fleet fast, reliable, and cost-effective is a serious engineering challenge. You'll build the GPU management and scheduling platform that sits at the center of it — collecting utilization and load metrics, interpreting what they actually mean, and using them to make real-time decisions about admission control and scaling. The goal: route and schedule inference calls so we use our capacity efficiently without exceeding it, and scale model replicas up and down automatically as demand shifts.

This is a senior role for someone with a decade in the field who can move fluidly between systems engineering and software development, and who is excited to own a complex, evolving system end to end.

What You'll Do
  • Design and build our GPU management and scheduling platform — the system that decides when, where, and how inference calls run across a fleet of ~30 models on heterogeneous hardware

  • Build the metrics pipeline that collects GPU load and utilization data, and the logic that turns those signals into decisions

  • Implement admission control to protect capacity — deciding when to accept, queue, or shed inference requests so we operate within fleet limits

  • Build autoscaling that adjusts the number of model replicas in response to real-time demand and utilization

  • Develop cloud orchestration systems and operators in Python and Go to manage the model fleet

  • Architect and operate scalable, fault-tolerant, secure production systems on AWS, GCP, or Azure

  • Design and build infrastructure automation and deployment pipelines (Terraform, CI/CD) as first-class software

  • Stand up and maintain monitoring, logging, and alerting that keep the platform reliable and performant

  • Develop and enforce security and compliance policies appropriate to a healthcare AI platform

  • Partner with engineers and research scientists to diagnose and resolve complex infrastructure, deployment, and operational issues

  • Mentor engineers and raise the technical bar across the team

What You Bring

Must-Have

  • 10+ years of professional experience across site reliability / DevOps engineering and software engineering

  • Computer Science Degree Required from a top CS program.

  • Strong software engineering fundamentals — you build orchestration and scheduling systems in Python and/or Go, not just configure off-the-shelf tools

  • Experience designing systems that make decisions from operational metrics — collecting signals, interpreting them, and driving control loops such as autoscaling, load shedding, or admission control

  • Deep experience with infrastructure automation and CI/CD (Terraform, GitLab CI/CD, or similar)

  • Hands-on production experience with at least one major cloud platform (AWS, GCP, or Azure)

  • Strong knowledge of containerization and orchestration (Docker, Kubernetes)

  • Experience with monitoring and logging stacks (ELK, Grafana, Datadog, or similar)

  • Familiarity with secrets management and security tooling (HashiCorp Vault, AWS KMS, Azure Key Vault)

  • Excellent problem-solving skills and the ability to work both independently and collaboratively

  • Strong communication and interpersonal skills

Nice-to-Have

  • Experience managing GPU fleets or scheduling workloads across heterogeneous accelerators

  • Familiarity with ML inference serving and model deployment (e.g. Triton, KServe, Ray Serve, or similar)

  • Experience with Kubernetes autoscaling internals (HPA/VPA, custom metrics, custom controllers)

  • Experience implementing HIPAA and SOC 2 compliance

  • Experience operating in an HPC environment

  • Bachelor's or Master's in Computer Science, Computer Engineering, or a related field

Join our team at Hippocratic AI and help shape the future of clinically safe, production-grade AI systems.

Why Join Hippocratic AI

Reinvent healthcare with AI that puts safety first. We’re building the world’s first healthcare‑only, safety‑focused LLM — a breakthrough platform designed to transform patient outcomes at a global scale. This is category creation.

Work with the people shaping the future. Hippocratic AI was co‑founded by CEO Munjal Shah and a team of physicians, hospital leaders, AI pioneers, and researchers from institutions like El Camino Health, Johns Hopkins, Washington University in St. Louis, Stanford, Google, Meta, Microsoft, and NVIDIA.

Backed by the world’s leading healthcare and AI investors. We recently raised a $126M Series C at a $3.5B valuation, led by Avenir Growth, bringing total funding to $404M with participation from CapitalG, General Catalyst, a16z, Kleiner Perkins, Premji Invest, UHS, Cincinnati Children’s, WellSpan Health, John Doerr, Rick Klausner, and others.

Build alongside the best in healthcare and AI. Join experts who’ve spent their careers improving care, advancing science, and building world‑changing technologies — ensuring our platform is powerful, trusted, and truly transformative.

Equal Opportunity

Hippocratic AI is an equal opportunity employer. We do not discriminate on the basis of race, color, religion, national origin, sex, age, disability, sexual orientation, gender identity or expression, genetic information, military or veteran status, or any other characteristic protected by applicable law. We are committed to building a team that reflects the patients we serve. We actively encourage applications from candidates of all backgrounds. If you require accommodations during the hiring process, please contact [email protected].

Please be aware of recruitment scams impersonating Hippocratic AI. All recruiting communication will come from @hippocraticai.com email addresses. We will never request payment or sensitive personal information during the hiring process.

Skills Required

  • 10+ years of professional experience across site reliability, DevOps engineering, and software engineering
  • Computer Science degree from a top CS program
  • Strong software engineering fundamentals, including building orchestration and scheduling systems in Python and/or Go
  • Experience designing systems that use operational metrics to drive autoscaling, load shedding, or admission control
  • Deep experience with infrastructure automation and CI/CD, including Terraform, GitLab CI/CD, or similar tools
  • Hands-on production experience with AWS, GCP, or Azure
  • Strong knowledge of Docker and Kubernetes
  • Experience with monitoring and logging stacks such as ELK, Grafana, or Datadog
  • Familiarity with secrets management and security tooling such as HashiCorp Vault, AWS KMS, or Azure Key Vault
  • Excellent problem-solving skills and ability to work independently and collaboratively
  • Strong communication and interpersonal skills
  • Experience managing GPU fleets or scheduling workloads across heterogeneous accelerators
  • Familiarity with ML inference serving and model deployment, such as Triton, KServe, or Ray Serve
  • Experience with Kubernetes autoscaling internals, including HPA, VPA, custom metrics, or custom controllers
  • Experience implementing HIPAA and SOC 2 compliance
  • Experience operating in a high-performance computing environment
  • Bachelor's or Master's degree in Computer Science, Computer Engineering, or a related field
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The Company
HQ: Palo Alto, California
97 Employees
Year Founded: 2023

What We Do

Hippocratic AI’s mission is to develop the first safety-focused Large Language Model (LLM) for healthcare. The company believes that a safe LLM can dramatically improve healthcare accessibility and health outcomes in the world by bringing deep healthcare expertise to every human. No other technology has the potential to have this level of global impact on health. The company was co-founded by CEO Munjal Shah, alongside a group of physicians, hospital administrators, healthcare professionals, and artificial intelligence researchers from El Camino Health, Johns Hopkins, Washington University in St. Louis, Stanford, Google, Microsoft, Meta and NVIDIA. Hippocratic AI has received a total of $137 million in funding and is backed by leading investors, including General Catalyst, Andreessen Horowitz, Premji Invest, SV Angel, NVentures (Nvidia Venture Capital), and Greycroft. For more information on Hippocratic AI: www.HippocraticAI.com.

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