Senior Systems Software Engineer, Windows and Linux Enablement - DGX Station

Thomas To

Santa Clara (CA)

On-site

USD 224,000 - 357,000

Full time

2 days ago
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Equity
Benefits

Job summary

NVIDIA DGX Station is a deskside AI supercomputer enabling Windows and Linux stack readiness from firmware to applications. We seek an engineer to own full-stack OS enablement, drive bring-up, validation, and certification across both Windows and Linux on the Grace/GB300 platform.

You will coordinate with firmware, driver, CUDA, and AI teams, validating CUDA toolkits and AI SDKs while ensuring day-one operability for researchers and developers worldwide.

Qualifications

  • BS or MS in Computer Science, Electrical Engineering, or related field with 12+ years in systems software engineering.
  • Strong hands-on experience with Windows internals: kernel-mode drivers, ACPI, power management, Secure Boot, UEFI, WHQL.
  • Solid Linux enablement: kernel modules, device tree/ACPI on Arm, systemd, initramfs, dkms.
  • Experience with GPU driver stack, display drivers, or compute drivers on Windows and Linux.
  • Strong debugging and root-cause analysis across firmware, driver, and OS boundaries.

Responsibilities

  • Own end-to-end Windows enablement for DGX Station, from bring-up to WHQL certification.
  • Drive Linux bring-up and enablement for DGX OS/Ubuntu, kernel modules, and packaging.
  • Enable BIOS/UEFI, BMC, firmware for Windows and Linux on Grace + Blackwell GB300.
  • Coordinate GPU driver and compute driver bring-up and validation on Windows and Linux.
  • Validate CUDA toolkit, cuDNN, TensorRT, NCCL, and NVIDIA AI SDK stack on both OSes.
  • Define test plans covering single-user and multi-user scenarios, container runtimes, and workflows.
  • Drive system validation, performance profiling, and bug triage across layers.
  • Engage with Microsoft and ODM/OEM partners to align platform requirements.

Skills

Windows platform
Linux bring-up
Firmware & driver enablement
GPU driver stack
C/C++
Python
Kernel debugging
System validation
Cross-functional collaboration

Education

BS or MS in Computer Science or Electrical Engineering

Tools

WDDM
DRM/KMS
DKMS
ACPI
Initramfs

Job description

DGX Station is NVIDIA’s next-generation personal AI supercomputer—a deskside workstation built on the NVIDIA Grace Blackwell GB300 Superchip with massive coherent CPU+GPU memory, designed to bring data-center-class AI capabilities directly to the desks of researchers, developers, and AI engineers. As NVIDIA brings DGX Station to a broad set of customers, we need an engineer who can own full-stack OS enablement—from firmware and drivers through OS integration to ensuring AI applications run seamlessly on day one, with a primary focus on Windows and strong coverage of Linux.

What You’ll Be Doing
  • Windows Platform Ownership (primary): Own end-to-end Windows enablement for DGX Station—driving the platform from initial bring-up on Windows through WHQL certification to customer-ready shipping quality. You are the single point of accountability for “DGX Station works on Windows.”
  • Linux Bring-up & Enablement: Drive Linux bring-up and continuous enablement for DGX Station on DGX OS / Ubuntu, including kernel module integration, device tree and ACPI configuration, systemd services, initramfs, and dkms packaging. Partner with the DGX OS and kernel teams to land platform support upstream and in NVIDIA’s distribution.
  • Firmware & Driver Enablement: Enable and validate BIOS/UEFI, BMC, and system-level firmware for Windows and Linux on the Grace (Arm) + Blackwell GB300 architecture. Work with firmware teams to ensure ACPI tables, SMBIOS, Secure Boot, measured boot, power management, and hardware abstraction layers are correct on both OSes.
  • GPU Driver Integration: Coordinate GPU driver, display driver, and compute driver bring-up and validation on Windows (WDDM, MCDM) and Linux (open-gpu-kernel-modules, DRM/KMS). Work with the NVIDIA driver team and Microsoft to resolve compatibility issues, achieve WHQL certification, and ensure driver stability across Windows Update and Linux kernel revisions.
  • CUDA & AI Stack Readiness: Ensure the CUDA toolkit, cuDNN, TensorRT, NCCL, and NVIDIA’s AI SDK stack are fully functional on DGX Station on both Windows and Linux. Validate AI/DL workload performance—training, fine-tuning, and inference—and work with the CUDA team to resolve gaps on the Arm + GB300 platform.
  • Application Validation: Validate that NVIDIA AI applications—NIM microservices, NemoClaw, AI Workbench, and developer tools—run correctly on DGX Station across Windows and Linux. Define and implement test plans covering single-user and multi-user scenarios, container runtimes, application installation flows, and developer workflows.
  • System Validation & Quality: Drive the overall test strategy for DGX Station on Windows and Linux: functional testing, stress testing, power/thermal validation, sleep/resume and S-state cycles, Windows Update and Linux kernel-upgrade compatibility, and long-duration reliability. Own bug triage and resolution across firmware, BMC, driver, and OS layers.
  • Partner Engagement: Be the primary technical interface with Microsoft (Windows on Arm, WHQL, driver signing) and ODM/OEM partners shipping DGX Station. Coordinate schedules, resolve cross-company technical blockers, and represent NVIDIA’s platform requirements on both OSes.
  • Performance Optimization: Profile and optimize system performance—boot time, GPU compute throughput, NVLink-C2C and memory bandwidth utilization, power efficiency, and thermal behavior. Identify bottlenecks across the stack on Windows and Linux and drive fixes with the appropriate teams.
  • Documentation & Enablement: Create and maintain platform documentation for DGX Station on Windows and Linux: bring-up guides, known issues, driver compatibility matrices, recovery and re-imaging procedures, and developer setup instructions. Enable field and support teams for customer deployments.
What We Need To See
  • BS or MS in Computer Science, Electrical Engineering, or related field (or equivalent experience) and 12+ yrs of confirmed experience in systems software engineering with deep expertise in Windows platform enablement, driver development, or OS integration, and proven hands-on experience bringing up Linux on new hardware platforms.
  • Strong hands-on experience with Windows internals: kernel-mode drivers, ACPI, power management, Secure Boot, UEFI, WDM/WDF driver frameworks, and the WHQL certification process.
  • Solid understanding of Linux platform enablement: kernel modules, device tree / ACPI on Arm, systemd, initramfs, dkms, and packaging for Ubuntu / DGX OS.
  • Experience with GPU driver stack, display drivers, or compute drivers on Windows and/or Linux. Familiarity with DirectX, WDDM, DRM/KMS, and GPU compute APIs is a strong plus.
  • Experience enabling hardware platforms—bring-up, driver integration, validation, and certification for shipping products on Windows and Linux.
  • Strong debugging and root-cause analysis skills across firmware, driver, and OS boundaries. Comfortable with WinDbg, kernel debugging (kd, kgdb/crash), crash dump analysis, ftrace/ETW, and performance profiling tools.
  • Ability to work across organizational boundaries—coordinating with GPU driver, CUDA, firmware, BMC, and AI software teams as well as external partners (Microsoft, ODM/OEMs).
  • Proficiency in C/C++ and Python. Experience with Arm architecture is a plus.
Ways To Stand Out From The Crowd
  • Experience with Windows on Arm platforms—driver enablement, performance optimization, or application compatibility on Arm-based Windows devices.
  • Hands-on experience with CUDA, TensorRT, or AI/ML frameworks on Windows and Linux—especially on Arm + NVIDIA GPU systems.
  • Prior experience working with OEM/ODM partners or silicon vendors on Windows and Linux platform certification for workstation- or server-class hardware.
  • Track record shipping workstation or server hardware products—from bring-up through general availability—with both Windows and Linux support.
  • Experience with BMC, Redfish, out-of-band management, or platform manageability software on high-end workstations or servers.Experience with GPU-accelerated applications: AI training and inference, content creation tools, or scientific computing on Windows and Linux.

NVIDIA is widely considered to be one of the technology world’s most desirable employers. We have some of the most forward-thinking and hardworking people on the planet working for us. If you’re creative and autonomous, we want to hear from you! We also welcome out-of-the-box problem solvers who can provide new ideas with a strong execution bias. Expect to be constantly challenged, improving, and evolving for the better. For two decades, we have pioneered visual computing, the art and science of computer graphics. Since the creation of the GPU, the engine of modern visual computing, the field has grown. It now involves video games, movie production, product composition, medical diagnosis, and scientific research. Today, we stand at the beginning of the next era, the AI computing era, ignited by a new computing model, GPU deep learning.

Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 224,000 USD - 356,500 USD.

You will also be eligible for equity and benefits.

Applications for this job will be accepted at least until August 26, 2026.

This posting is for an existing vacancy.

NVIDIA uses AI tools in its recruiting processes.

NVIDIA is committed to fostering an inclusive work environment and proud to be an equal opportunity employer. As we highly value diversity in our current and future employees, we do not discriminate (including in our hiring and promotion practices) 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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