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Senior HPC DevOps Engineer

NVIDIA · Netherlands

DevOpsRemote

About this role

The Senior HPC DevOps Engineer will be a key player in building the supercomputers and HPC clusters of the future. Responsibilities include designing, implementing, and maintaining large-scale HPC/AI clusters with state-of-the-art monitoring, logging, and alerting systems. The role involves utilizing and developing infrastructure as code tools for scalable deployments, streamlining CI/CD pipelines, and automating deployment, configuration management, and operational monitoring. The individual will also develop complex networking automations, troubleshoot complex issues across all system layers, and lead as a technical resource by sharing best practices. The role requires collaboration with HPC, OS, GPU compute, and systems specialists to architect and develop large-scale performance platforms.

Skills & technologies

Must have

  • HPC
  • AI
  • Infrastructure as Code
  • CI/CD
  • Automation
  • Networking
  • Jenkins
  • Ansible
  • Puppet
  • Chef
  • Windows
  • Linux
  • Redhat
  • CentOS
  • Ubuntu
  • InfiniBand
  • Ethernet
  • Slurm
  • Kubernetes
  • Lustre
  • GPFS
  • ZFS
  • XFS
  • VMware
  • Hyper-V
  • KVM
  • Citrix
  • AWS
  • Azure
  • Google Cloud

Nice to have

  • Networking
  • CPU Architecture
  • GPU Architecture
  • Kubernetes
  • CUDA
  • RDMA
  • InfiniBand
  • RoCE

Read full description

About the job NVIDIA is looking for an experienced HPC DevOps and Network Engineer to help us build the supercomputers and HPC clusters of the future. As a Senior HPC DevOps Engineer, you'll be a key player in groundbreaking advancements in artificial intelligence and GPU computing. Your expertise will drive the latest breakthroughs, providing insights on at-scale system design and tuning mechanisms for large-scale compute runs. You will work with the latest Accelerated computing and Deep Learning software and hardware platforms, and with many scientific researchers, developers, and customers to craft improved workflows and develop new, leading differentiated solutions. You will interact with HPC, OS, GPU compute, and systems specialist to architect, develop and bring up large scale performance platforms. What You’ll Be Doing Innovate and Implement: Design, implement, and maintain large-scale HPC/AI clusters with state-of-the-art monitoring, logging, and alerting systems. Infrastructure as Code (IaC): Utilize and develop tools to manage infrastructure as code, ensuring scalable and repeatable deployments. Streamline CI/CD Pipelines: Develop and maintain continuous integration and continuous delivery (CI/CD) pipelines to automate and streamline deployment processes. Automate Everything: Develop automation scripts and tools to automate deployment, configuration management, and operational monitoring. Develop complex Networking automations. Troubleshoot Complex Issues: Perform comprehensive troubleshooting from bare metal to application level, ensuring system reliability and efficiency. Lead and Educate: Serve as a technical resource, developing and sharing best practices with internal teams. Drive Innovation: Support R&D activities and engage in proof of concepts (POCs) and proof of values (POVs) for future improvements. What We Need To See B.Sc. in Computer Science, Engineering, or a related field with 5+ years of experience. Deep knowledge of HPC and AI solution technologies, including CPUs, GPUs, high-speed interconnects, and supporting software. Advanced proficiency in programming and scripting languages, with a solid understanding of object-oriented programming principles. Familiarity with Jenkins, Ansible, Puppet/Chef. Excellent knowledge of Windows and Linux (Redhat/CentOS and Ubuntu), networking and OS-level security. Deep understanding of networking protocols such as InfiniBand and Ethernet. Experience with job scheduling workloads and orchestration tools such as Slurm and Kubernetes. Background with multiple storage solutions like Lustre, GPFS, ZFS, and XFS. Expertise with virtual systems (VMware, Hyper-V, KVM, Citrix). Familiarity with cloud platforms (AWS, Azure, Google Cloud). Ways To Stand Out From The Crowd Proven networking experience or strong knowledge through professional networking training. Architectural Insight: Knowledge of CPU and/or GPU architecture. Container Expertise: Understanding of Kubernetes and container-related microservice technologies. GPU Focus: Experience with GPU-focused hardware/software (DGX, CUDA). RDMA Fabrics: Background with RDMA (InfiniBand or RoCE) fabrics. At NVIDIA, we value diversity and are committed to creating an inclusive environment for all employees. We do not discriminate on the basis of race, religion, color, national origin, sex, gender, gender expression, sexual orientation, age, marital status, veteran status, or disability status. We provide reasonable accommodations to ensure all individuals can participate in the job application or interview process, perform essential job functions, and receive other benefits and privileges of employment. Join us and be part of a team that's pushing the boundaries of technology and making a real impact in the world. , , JR2010371
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