Senior Site Reliability Engineer (SRE, Compute Node Team)

Jobgether

Deutschland

Vor Ort

EUR 90.000 - 120.000

Vollzeit

vor 11 Stunden
Sei unter den ersten Bewerbenden
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Benefits dieser Stelle

Competitive pay
Career growth
Flexible work
Ownership
Collaborative culture

Zusammenfassung

Jobgether is seeking a Senior Site Reliability Engineer based in Germany to oversee the reliability of compute nodes within a large-scale cloud platform.

You will work closely with platform, kernel, hypervisor, GPU, and infrastructure teams, applying deep Linux, virtualization, observability, and incident-response expertise to delivery resilient AI and cloud workloads.

Qualifikationen

  • Significant SRE or Linux infrastructure experience.
  • Deep knowledge of Linux user space and kernel space.
  • Hands-on with QEMU/KVM and virtualization.
  • Experience with containers, namespaces, and cgroups.
  • Strong incident response and root-cause analysis experience.

Aufgaben

  • Ensure reliability, availability, and performance of compute nodes running VMs.
  • Analyze Linux systems across user and kernel space to diagnose issues.
  • Lead incident response and postmortems for long-term reliability.
  • Develop and refine observability stacks with metrics, logs, and alerts.
  • Collaborate with platform, kernel/hypervisor, GPU, and infra teams.

Kenntnisse

Linux infrastructure
Linux kernel subsystems
QEMU/KVM
Containers
Observability
SRE discipline

Tools

perf
eBPF
ftrace
strace

Jobbeschreibung

This position is listed on behalf of a partner company, who manages all applications and next steps. Our partner is looking for a Senior Site Reliability Engineer (SRE, Compute Node Team) based in Germany.

This is a senior Site Reliability Engineering role focused on the infrastructure that runs and manages virtual machines across a large-scale cloud platform.

You will work close to the Linux operating system, hypervisor, and node-level services that form the foundation of the compute environment.

The role combines deep Linux systems engineering, virtualization, containerization, observability, and production reliability.

You will investigate complex issues involving CPU, memory, NUMA, cgroups, scheduling, and system performance across user and kernel space.

You will also help shape reliability practices through strong monitoring, incident response, root-cause analysis, and postmortem processes.

Collaboration with platform, kernel, hypervisor, GPU, and infrastructure teams will be central to improving system design and operability.

This is an opportunity to influence critical compute infrastructure supporting demanding AI and cloud workloads at significant scale.

Accountabilities
  • Ensure the reliability, availability, and performance of compute nodes responsible for running virtual machines.
  • Analyze and debug complex Linux systems across both user space and kernel space.
  • Investigate system capabilities, limitations, dependencies, and trade-offs across different layers of the operating system and infrastructure stack.
  • Troubleshoot complex production issues involving CPU, memory, NUMA, cgroups, and scheduling.
  • Work hands-on with virtualization technologies, primarily QEMU/KVM and Linux-native technologies.
  • Analyze VM lifecycle behavior, performance characteristics, resource utilization, and failure modes.
  • Support and improve containerized workloads using Linux-native mechanisms such as namespaces and cgroups.
  • Design and evolve observability for the compute node layer, including metrics, logs, traces, alerts, SLIs, and SLOs.
  • Build reliability signals that provide clear and actionable insight into system behavior.
  • Lead or contribute to incident response, ensuring production issues are diagnosed and resolved efficiently.
  • Conduct structured root-cause analysis and develop corrective actions for recurring or systemic reliability issues.
  • Lead and contribute to postmortems focused on long-term reliability improvements rather than short-term remediation alone.
  • Identify opportunities to automate operational processes and improve the resilience of compute infrastructure.
  • Collaborate closely with platform, kernel/hypervisor, GPU, and infrastructure teams on system design and operational improvements.
  • Contribute to improving the operability, scalability, and maintainability of node-level services.
  • Investigate performance issues across multiple layers of the compute stack and develop practical engineering solutions.
  • Help establish reliability and observability as core capabilities of the compute platform.
Requirements
  • Significant professional experience in Site Reliability Engineering, Systems Engineering, Linux infrastructure, or a closely related field.
  • Deep expertise in Linux, including strong understanding of both user space and kernel space.
  • Knowledge of important Linux kernel subsystems, including scheduling, memory management, filesystems, cgroups, and namespaces.
  • Strong understanding of system boundaries, constraints, dependencies, and trade-offs across different infrastructure layers.
  • Hands‑on experience with QEMU/KVM and a solid understanding of virtualization technologies.
  • Understanding of virtual machine lifecycles, performance characteristics, resource management, and failure modes.
  • Practical experience with containers, Linux namespaces, and cgroups.
  • Strong understanding of resource isolation, allocation, and control in containerized environments.
  • Excellent debugging skills and the ability to reason systematically about complex system failures.
  • Structured, hypothesis‑driven approach to incident investigation and troubleshooting.
  • Strong understanding of the SRE discipline, including the relationship between software engineering, operations, reliability, and system design.
  • Experience building and operating observability stacks, rather than simply consuming existing monitoring dashboards.
  • Ability to translate complex system behavior into actionable reliability signals, alerts, SLIs, and SLOs.
  • Strong analytical and problem‑solving skills, with the ability to investigate issues across operating‑system and infrastructure layers.
  • Experience operating production systems and responding effectively to reliability and performance incidents.
  • Strong communication and collaboration skills when working with multidisciplinary infrastructure and engineering teams.
  • Ability to take ownership of complex technical problems and drive them through investigation, resolution, and long‑term improvement.
  • Experience with Kubernetes internals or node‑level components is an advantage.
  • Hands‑on experience with low‑level Linux debugging tools such as perf, eBPF, ftrace, strace, or kernel crash dumps is beneficial.
  • Familiarity with large‑scale compute or bare‑metal infrastructure is a plus.
  • Contributions to open‑source infrastructure or systems software are advantageous.
  • Experience debugging hardware‑ and driver‑level issues, including GPUs, NVLink, or InfiniBand, is a strong plus.
Benefits
  • Competitive compensation.
  • Career growth and continuous learning opportunities.
  • Flexibility and significant ownership in your work.
  • Collaborative and innovative engineering environment.
  • Opportunity to work on impactful AI and cloud infrastructure projects.
  • Exposure to large‑scale compute, Linux systems, virtualization, and distributed infrastructure.
  • Opportunity to collaborate with highly skilled international engineering teams.
  • Inclusive workplace committed to equal employment opportunities.
  • Workplace accommodations available during the application process where required.
  • Employment is subject to authorization to work in the country where the position is based.
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