At Lilly, the work is demanding because patients are waiting. We unite caring with discovery to help make life better for people around the world, knowing that every decision, every detail, and every day matters. Headquartered in Indianapolis, Indiana, our over 50,000 employees around the globe take on complex challenges to discover and deliver life-changing medicines, strengthen how health is understood and managed, and support the communities we serve. This is hard, urgent, selfless work—but it’s work worth doing. If you’re driven by purpose and ready to bring your best to work that truly matters for patients, we invite you to join us.
Where AI Meets Medicine: Build the Future of Drug Discovery in the Heart of Silicon Valley!
Making medicine that’s never been made means doing what’s never been done. If you’re an engineer, scientist, or builder who thrives on problems no one has solved before, this is your invitation; we want you on the team. We are ready to challenge the status quo and push medicine forward, all in the name of health. Are you up for the challenge? If so, join us!
About the Lilly and NVIDIA Partnership
Lilly and NVIDIA are launching a new AI co-innovation lab in the heart of Silicon Valley — an up-to-$1 billion, multi-year commitment to solve drug discovery’s toughest challenges. The lab brings Lilly scientists, technologists, chemists and biologists together with NVIDIA engineers under one roof. Together, we are building purpose-built foundation and frontier AI models trained on Lilly data at scale, tightening the feedback loop between automated wet labs and computational dry labs, designing the next generation of medicines for millions of patients across the globe.
What You’ll Be Doing
The HPC Systems Administrator will build and operate scalable AI and high-performance computing platforms that power advanced machine learning and scientific workloads. You will partner with AI scientists, engineers, and domain experts to enable efficient model training, inference, and experimentation across GPU, cloud, and on-premises environments. Through platform engineering and automation, you will improve productivity, performance, and access to advanced computing resources while ensuring the reliability, availability, and efficiency of Lilly's AI and HPC infrastructure.
How You’ll Succeed
Deliver highly available, secure, and performant AI and HPC platforms that meet the needs of research and engineering teams.
Drive operational excellence through automation, standardization, monitoring, and continuous improvement.
Balance infrastructure reliability, scalability, and cost efficiency across environments.
Enable efficient ML workflows through automation for orchestration, resource scheduling, data access, and reproducibility
Collaborate effectively across scientific, engineering, and infrastructure teams to solve complex technical challenges.
Adapt quickly to evolving AI, GPU, and HPC technologies and translate new capabilities into business value.
What You Should Bring
Deep expertise in Linux systems administration, automation, and infrastructure management, with strong scripting skills in Python, Bash, and/or Ansible.
Experience building, administering, and optimizing large-scale HPC, GPU, or AI/ML computing environments, including job scheduling and resource management platforms such as Slurm or Grid Engine.
Proficiency with automation, configuration management, and container technologies, including Ansible, Kubernetes, Docker, and related tooling.
Solid understanding of distributed computing, high-performance networking, storage architectures, and cluster infrastructure.
Experience supporting large-scale distributed training and inference workloads across multi-GPU and multi-node environments.
Knowledge of GPU infrastructure, hardware lifecycle management, monitoring, and observability practices.
Demonstrated ability to solve complex infrastructure challenges, identify root causes, and implement scalable automated solutions.
Good communication and collaboration skills, with the ability to work effectively across researchers, engineers, and infrastructure teams.
Experience running NVIDIA GPU infrastructure and hardware lifecycle operations, including GPU monitoring, partitioning, diagnostics, and out-of-band server management using industry-standard tools and protocols.
Experience supporting regulated or critical environments is a plus.
Experience operating AI/HPC infrastructure in cloud environments such as AWS, Azure, or GCP.
Your Basic Qualifications
Bachelor’s Computer Science, Electrical/Computer Engineering, Systems Engineering, or a related technical field.
5 years’ experience deploying, administering, or supporting large-scale HPC, GPU, or distributed computing environments in an enterprise or research setting.
Location & Work Flexibility
This role is based at our Silicon Valley Hub. We offer a flexible hybrid work model, with three days onsite and two days working remotely each week, supporting both collaboration and work‑life balance.
Lilly is dedicated to helping individuals with disabilities to actively engage in the workforce, ensuring equal opportunities when vying for positions. If you require accommodation to submit a resume for a position at Lilly, please complete the accommodation request form (https://careers.lilly.com/us/en/workplace-accommodation) for further assistance. Please note this is for individuals to request an accommodation as part of the application process and any other correspondence will not receive a response.
Lilly is proud to be an EEO Employer and does not discriminate on the basis of age, race, color, religion, gender identity, sex, gender expression, sexual orientation, genetic information, ancestry, national origin, protected veteran status, disability, or any other legally protected status.
Our employee resource groups (ERGs) offer strong support networks for their members and are open to all employees. Our current groups include: Africa, Middle East, Central Asia (AMECA), Black Employees at Lilly (BE@Lilly), Chinese Culture Network (CCN), EnAble, Evolve, Lilly Indian Network (LIN), Organization of Latinx at Lilly (OLA), Pride (LGBTQ+ Allies), Veterans Leadership Network (VLN) and Women’s Initiative for Leading at Lilly (WILL).
Actual compensation will depend on a candidate’s education, experience, skills, and geographic location. The anticipated wage for this position is
$141,000 - $231,000Full-time equivalent employees also will be eligible for a company bonus (depending, in part, on company and individual performance). In addition, Lilly offers a comprehensive benefit program to eligible employees, including eligibility to participate in a company-sponsored 401(k); pension; vacation benefits; eligibility for medical, dental, vision and prescription drug benefits; flexible benefits (e.g., healthcare and/or dependent day care flexible spending accounts); life insurance and death benefits; certain time off and leave of absence benefits; and well-being benefits (e.g., employee assistance program, fitness benefits, and employee clubs and activities).Lilly reserves the right to amend, modify, or terminate its compensation and benefit programs in its sole discretion and Lilly’s compensation practices and guidelines will apply regarding the details of any promotion or transfer of Lilly employees.
#WeAreLilly
Skills Required
- Bachelor's degree in Computer Science, Electrical or Computer Engineering, Systems Engineering, or a related technical field
- At least 5 years of experience deploying, administering, or supporting large-scale HPC, GPU, or distributed computing environments in an enterprise or research setting
- Deep expertise in Linux systems administration, automation, and infrastructure management
- Strong scripting skills in Python, Bash, and/or Ansible
- Experience building, administering, and optimizing large-scale HPC, GPU, or AI/ML computing environments
- Experience with job scheduling and resource management platforms such as Slurm or Grid Engine
- Proficiency with automation, configuration management, and container technologies including Ansible, Kubernetes, and Docker
- Understanding of distributed computing, high-performance networking, storage architectures, and cluster infrastructure
- Experience supporting large-scale distributed training and inference workloads across multi-GPU and multi-node environments
- Knowledge of GPU infrastructure, hardware lifecycle management, monitoring, and observability practices
- Experience operating NVIDIA GPU infrastructure, including monitoring, partitioning, diagnostics, and out-of-band server management
- Ability to solve complex infrastructure challenges, identify root causes, and implement scalable automated solutions
- Good communication and collaboration skills across researchers, engineers, and infrastructure teams
- Experience operating AI/HPC infrastructure in AWS, Azure, or GCP cloud environments
- Experience supporting regulated or critical environments
Eli Lilly and Company Compensation & Benefits Highlights
The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Eli Lilly and Company and has not been reviewed or approved by Eli Lilly and Company.
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Retirement Support — Feedback suggests long-term savings are bolstered by a defined-benefit pension alongside a company 401(k) match and retiree health options. These elements make total compensation feel strong beyond base salary.
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Leave & Time Off Breadth — Feedback suggests paid time off is expansive, with substantial vacation, company shutdown days, and milestone time. This breadth of leave is viewed as a meaningful part of overall rewards.
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Parental & Family Support — Feedback suggests family-building and caregiving support are robust, including paid parental leave, adoption or surrogacy assistance, and backup care. These programs enhance the perceived value of benefits across life stages.
Eli Lilly and Company Insights
What We Do
Eli Lilly and Company engages in the discovery, development, manufacture, and sale of products in pharmaceutical products business segment. For more than a century, we have stayed true to a core set of values – excellence, integrity, and respect for people – that guide us in all we do: discovering medicines that meet real needs, improving the understanding and management of disease, and giving back to communities through philanthropy and volunteerism.








