Senior Systems Software Engineer, Compute Stack Acceleration

NVIDIA AI

Santa Clara (CA)

On-site

USD 184,000 - 356,500

Full time

14 days+

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Equity
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Job summary

NVIDIA is growing a senior systems software engineer team focused on making our compute software stack first-class on NVIDIA CPU platforms. You will lead cross-stack efforts across compiler, platform, performance, library, and applications teams to drive measurable outcomes and turn adoption barriers into repeatable engineering practices.

As a senior engineer, you will evaluate GCC/LLVM toolchains, integrate new workflows into large build systems, and document validated approaches for reuse.

Qualifications

  • BS, MS, or PhD in Computer Science, Computer Engineering, Electrical Engineering, or related field, or equivalent experience. 8+ years of relevant systems software engineering experience.
  • Strong C and C++ development, debugging, and code-review skills.
  • Strong Linux systems knowledge and hands-on experience with complex native software stacks.
  • Practical experience with GCC or LLVM/Clang, linkers, compiler options, and build systems.
  • Experience working in large, multi-component codebases and CI environments.
  • Experience with performance profiling, root-cause analysis, and before-and-after validation.
  • Ability to lead projects with substantial technical and organizational ambiguity.
  • Excellent written and verbal communication and a record of effective cross-team collaboration.

Responsibilities

  • Lead toolchain, build, code-health, and performance-workflow adoption projects across large software components.
  • Evaluate and deploy supported GCC and LLVM/Clang toolchains, compiler options, linkers, sysroots, and cross-compilation configurations.
  • Integrate modern toolchains and workflows into complex build systems and continuous‑integration environments.
  • Establish useful Clang diagnostic builds and targeted sanitizer coverage in partnership with component owners.
  • Use profiling, PMU data, flamegraphs, and binary/source analysis to identify actionable performance and code-quality findings.
  • Build automation, wrappers, validation scripts, dashboards, and migration helpers where they improve adoption and repeatability.
  • Drive complex blockers to the appropriate compiler, runtime, library, infrastructure, or component owner.
  • Document validated approaches as reusable playbooks for other engineering teams. Communicate technical results and tradeoffs clearly to engineers and leadership.

Skills

C and C++ development
Linux systems
GCC/LLVM toolchains
CI environments
lead projects
cross-team collaboration

Education

BS/MS/PhD in CS/CE/EE
equivalent experience

Tools

GCC
LLVM/Clang
Perf tooling

Job description

NVIDIA is growing a senior engineering team focused on making our compute software stack first-class on NVIDIA CPU platforms. The team turns modern toolchains, build and code-health practices, performance-analysis workflows, and optimization techniques into repeatable improvements across real software components.

We are looking for an experienced systems software engineer who can lead cross-stack engineering efforts from an ambiguous adoption problem to a measurable outcome. You will work closely with compiler, platform, performance, library, and application teams to validate new capabilities, resolve integration blockers, produce credible before-and-after evidence, and turn successful approaches into reusable engineering practices. Depending on your background and project needs, your initial work may emphasize toolchain, build, and code-health adoption or profiling, optimization, and evidence-routing workflows. The role is intentionally broad enough to evolve as the team identifies the highest-leverage opportunities across the stack.

What You’ll Be Doing
  • Lead toolchain, build, code-health, and performance-workflow adoption projects across large software components.
  • Evaluate and deploy supported GCC and LLVM/Clang toolchains, compiler options, linkers, sysroots, and cross-compilation configurations.
  • Integrate modern toolchains and workflows into complex build systems and continuous‑integration environments.
  • Establish useful Clang diagnostic builds and targeted sanitizer coverage in partnership with component owners. Evaluate techniques such as link-time optimization, profile-guided optimization, AutoFDO, and BOLT on representative software.
  • Use profiling, PMU data, flamegraphs, and binary/source analysis to identify actionable performance and code-quality findings.
  • Build automation, wrappers, validation scripts, dashboards, and migration helpers where they improve adoption and repeatability. Measure changes in runtime, code size, build time, launch latency, throughput, quality, or engineering velocity.
  • Drive complex blockers to the appropriate compiler, runtime, library, infrastructure, or component owner.
  • Document validated approaches as reusable playbooks for other engineering teams. Communicate technical results and tradeoffs clearly to engineers and leadership.
What We Need To See
  • BS, MS, or PhD in Computer Science, Computer Engineering, Electrical Engineering, or related field, or equivalent experience. 8+ years of relevant systems software engineering experience.
  • Strong C and C++ development, debugging, and code-review skills.
  • Strong Linux systems knowledge and hands‑on experience with complex native software stacks.
  • Practical experience with GCC or LLVM/Clang, linkers, compiler options, and build systems.
  • Experience working in large, multi-component codebases and CI environments.
  • Experience with performance profiling, root‑cause analysis, and before-and-after validation.
  • Ability to lead projects with substantial technical and organizational ambiguity.
  • Excellent written and verbal communication and a record of effective cross‑team collaboration.
Ways To Stand Out From The Crowd
  • Experience with Arm64 systems, CPU architecture, vectorization, or SVE. Experience with LTO, PGO, AutoFDO, BOLT, binary optimization, or code-layout analysis.
  • Hands‑on experience with Clang diagnostics, AddressSanitizer, or other code-health workflows.
  • Familiarity with PMU analysis, perf, flamegraphs, BRBE, SPE, ETM, or similar profiling technologies.
  • Experience with cross‑compilation, sysroots, large monorepositories, Perforce-scale development, or distributed build systems.
  • Experience turning a successful migration or optimization into a maintained workflow used by multiple teams. Python or other scripting experience for engineering automation and data analysis.

Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 184,000 USD - 287,500 USD for Level 4, and 224,000 USD - 356,500 USD for Level 5. You will also be eligible for equity and benefits.

NVIDIA is committed to fostering an inclusive work environment and is an equal opportunity employer. We do not discriminate on the basis of race, religion, color, national origin, gender, gender expression, sexual orientation, age, marital status, veteran status, disability status, or any other characteristic protected by law.

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