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Salary
$241k – $331k per year
Location
Remote/Hybrid (Redwood City, United States)
Seniority
Staff · 8+ years exp
Overview
Company
Impact
Profile match
Chan Zuckerberg Biohub is a non-profit biomedical research organization headquartered in San Francisco, California, and founded in 2016 by the Chan Zuckerberg Initiative. The organization runs interdisciplinary research programs in imaging, infectious disease, cell biology, and AI driven biology in partnership with Stanford, UC Berkeley, and UC San Francisco. It has grown into a network of institutes with additional sites in Chicago and New York, working toward the stated goal of helping to cure, prevent, or manage all disease by the end of the century.

Biohub is the first large-scale initiative bringing frontier AI models, massive compute, and frontier experimental capabilities under one roof. We're building a general-purpose system to accelerate scientific discovery, integrating frontier AI models, biological foundation models, and lab capabilities, with the ultimate goal of curing disease. Our technology powers scientists around the world, translating AI capabilities into tools that accelerate research everywhere.

The Team

The AI Cluster Production Engineering team is part of the AI Compute Platform organization at Biohub, a non-profit research lab committed to open science and open-source AI. We own the design, operation, and reliability of large-scale multi-GPU AI clusters that power frontier AI biology research: protein language models, genomic foundation models, and scientific reasoning systems built to be shared, not monetized. Our clusters run Slurm on Kubernetes infrastructure and support everything from day-to-day AI researcher workflows to multi-node hero training runs at thousands of GPUs. The team works at the intersection of AI tooling, distributed systems, HPC, and frontier AI, debugging deep AI infrastructure problems and building AI systems critical to the entire AI organization.

The Opportunity

CZ Biohub's mission is to cure or prevent all human disease. Achieving that requires training frontier-scale AI biology models, and that demands reliable, high-performance compute infrastructure. This is production engineering work at a frontier AI lab, with the twist that the mission is biology and the science is open. You'll keep GPU clusters running at high utilization, debug the toughest distributed systems failures, and build the operational foundations for scaling to multi-thousand GPU hero runs.  The technical problems are genuinely hard (e.g., multi-node distributed training, InfiniBand fabrics, large-scale storage, Slurm at scale) inside an organization where the work is aimed at helping people, not optimizing ad revenue.

What You'll Do

  • Own reliability, observability, and incident response for multi-site GPU clusters running Slurm on Kubernetes. Build the systems, automation, and processes that keep clusters healthy,  and that enable fast, efficient recovery when things break.
  • Debug and resolve deep infrastructure failures across storage, networking, scheduling, and GPU compute layers. Build the tooling and operational patterns that make these failures easier to detect, diagnose, and prevent.
  • Design and execute GPU cluster scaling plans, systematically validating storage, networking, interconnect, and scheduler behavior as clusters grow to support larger training runs.
  • Build automation and tooling to manage cluster operations at scale: capacity planning, GPU utilization monitoring workload manager policy management, and pod lifecycle automation.
  • Drive configuration-as-code practices, ensuring cluster state is reproducible and auditable, and managed through version-controlled pipelines.
  • Collaborate directly with AI researchers and hero run leads to understand training workload patterns and design infrastructure that meets frontier-scale requirements.
  • Own the vendor relationship on technical issues - escalating SEV1s, coordinating across multiple partners and network backbone teams, holding them accountable to root/proximate cause analysis and SLAs.
  • Contribute to capacity planning: projecting GPU demand, managing cluster expansion across GPU generations, and coordinating multi-cluster strategy.
  • Improve operational resilience, reducing mean time to detect and resolve incidents, reducing toil through automation, and developing runbooks that scale the team's operational knowledge beyond any individual.

What You'll Bring

  • 8+ years of AI/ML infrastructure engineering experience, with deep expertise in at least one of: HPC/Slurm cluster operations, Kubernetes at scale, distributed systems debugging, or GPU compute infrastructure.
  • Strong Linux systems fundamentals - networking (TCP/IP, InfiniBand, RDMA, MTU/MSS/PMTUD), storage (NFS, VAST, WEKA, POSIX semantics), kernel internals (cgroups, namespaces, eBPF, sysctls).
  • Hands-on experience with Kubernetes and cloud-native infrastructure - pod lifecycle, CNI plugins (Cilium preferred), StatefulSets, Helm, ArgoCD, or equivalent GitOps tooling.
  • Experience with HPC workload managers - Slurm strongly preferred (QoS, partitions, preemption, accounting, Sunk/CoreWeave patterns a plus).
  • Debugging instinct: ability to form hypotheses quickly, design controlled experiments, and root cause complex multi-system failures under pressure. You enjoy finding the hard bugs.
  • Proficiency in Python and Bash for automation and tooling. Go, Rust, or C/C++ a plus.
  • Experience with observability stacks - Prometheus/VictoriaMetrics, Grafana, DCGM metrics, distributed tracing. You know how to instrument systems you don't control.
  • Excellent communication - you can write a crisp incident summary for researchers, a technical escalation to a vendor CTO, and a system design doc for teammates, all in the same day.
  • Bonus: experience with distributed AI training infrastructure (NCCL, PyTorch DDP, multi-node job debugging, checkpoint/restart patterns, container environments for large-scale training).

Compensation

The Redwood City, CA base pay range for a new hire in this role is $241,000 - $331,000. New hires are typically hired into the lower portion of the range, enabling employee growth in the range over time. Actual placement in range is based on job-related skills and experience, as evaluated throughout the interview process. 

Better Together

As we grow, we’re excited to strengthen in-person connections and cultivate a collaborative, team-oriented environment. This role is a hybrid position requiring you to be onsite for at least 60% of the working month, approximately 3 days a week, with specific in-office days determined by the team’s manager. The exact schedule will be at the hiring manager's discretion and communicated during the interview process.

Benefits for the Whole You  

We’re thankful to have an incredible team behind our work. To honor their commitment, we offer a wide range of benefits to support the people who make all we do possible. 

  • Provides a generous employer match on employee 401(k) contributions to support planning for the future.
  • Paid time off to volunteer at an organization of your choice. 
  • Funding for select family-forming benefits. 
  • Relocation support for employees who need assistance moving

If you’re interested in a role but your previous experience doesn’t perfectly align with each qualification in the job description, we still encourage you to apply as you may be the perfect fit for this or another role.

#LI-Hybrid 

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