Senior Engineering Manager, Object Storage - DGX Cloud

Posted 12 Hours Ago
Be an Early Applicant
2 Locations
In-Office or Remote
272K-489K Annually
Senior level
Artificial Intelligence • Computer Vision • Hardware • Robotics • Metaverse
The Role
Lead and grow two engineering teams building NVIDIA's internal S3-compatible object storage and data movement tooling. Own roadmap execution, service reliability (SLOs, capacity, incident response), CI/CD and observability, recruiting and mentorship, and cross-team collaboration to ensure high-performance, scalable storage for AI workloads at exabyte scale.
Summary Generated by Built In

NVIDIA's Object Storage Platform team builds and operates the company's internal S3-compatible distributed object storage service — a critical piece of infrastructure that stores, manages, and serves exabytes of data across NVIDIA's on-premises and hybrid environments. This platform is the storage backbone for NVIDIA's AI infrastructure, enabling researchers and engineers to reliably store massive datasets, model checkpoints, and training artifacts at scale. A companion data movement team extends the platform with tooling that efficiently stages and moves data closer to GPU clusters, minimizing idle accelerator time and accelerating training and inference pipelines.

We are seeking a seasoned Engineering Manager to lead this organization across two closely aligned teams: the core Object Storage platform team and the Data Movement Tools team. You will own the full software development and service delivery lifecycle — from roadmap planning through production operations — while building a high-performance engineering culture grounded in technical excellence, service reliability, and continuous delivery.

What You'll Be Doing:

  • Lead and grow a multi-team engineering organization, setting a high bar for software quality, service reliability, and engineering culture.

  • Own roadmap execution for NVIDIA's internal object storage service — partnering with internal customers, Product Management, and Architecture to translate multi-quarter goals into clear engineering plans with measurable milestones.

  • Drive development and operation of NVIDIA's S3-compatible object storage service, ensuring it meets the performance, durability, availability, and scalability demands of AI training and inference workloads at exabyte scale.

  • Lead the Data Movement Tools team in building and evolving tooling that stages datasets, model checkpoints, and artifacts from distributed storage to GPU-adjacent compute — minimizing I/O bottlenecks and keeping accelerators fully utilized.

  • Define and uphold service reliability standards: SLOs, capacity planning, incident response, root cause analysis, and on-call hygiene. Partner with SRE to ensure the platform meets the availability commitments internal customers depend on.

  • Establish and enforce engineering standards across both teams: design reviews, code quality, CI/CD practices, automated testing, and production observability. Recruit, mentor, and develop engineers across all levels, conducting regular 1:1s, performance cycles, and career growth conversations. Build a diverse, inclusive, and high-retention team.

  • Collaborate closely with SRE, Platform, Networking, and Security teams to ensure smooth transitions from development to production and rapid resolution of customer-impacting issues.

  • Champion the adoption of AI-assisted development tooling — coding assistants, agentic workflows, and automated testing harnesses — to accelerate team productivity and raise engineering output. Represent the Object Storage engineering organization to senior leadership, providing transparent status updates, surfacing risks early, and advocating for the resources needed to succeed.

What We Need to See:

  • BS, MS, or PhD in Computer Science, Electrical Engineering, or a related field — or equivalent experience.

  • 10+ overall years of software engineering experience, including 4+ years in an engineering management role leading teams of 10 or more engineers delivering production services at scale.

  • Deep technical background in distributed storage systems, object storage platforms, or large-scale cloud data services; hands-on development experience in Go, C++, Python, or equivalent systems languages.

  • Direct, hands-on experience building or scaling S3-compatible object storage systems in a production cloud or private cloud environment — with demonstrable improvements in throughput, durability, or operational efficiency.

  • Demonstrated experience building or operating cloud storage services — with accountability for reliability, performance, and capacity at scale in a production environment.

  • Proven track record of shipping production software on time — managing scope, risk, and delivery across multiple concurrent workstreams.

  • Strong experience with modern software development and service delivery practices: CI/CD, automated testing, SLO-based reliability, production observability, and incident management.

  • Demonstrated ability to attract, develop, and retain strong engineering talent in a driven environment, with a track record of growing engineers into senior and staff-level roles.

  • Excellent written and verbal communication — able to translate complex technical trade-offs for product partners and engineering constraints for executive audiences.

Ways to Stand Out from the crowd:

  • Prior experience designing and operating internal cloud storage services (IaaS/PaaS) with well-defined SLAs, metered usage, and internal customer-facing APIs.

  • Background in data movement, data staging, or prefetching tooling for AI/ML workloads — with direct experience optimizing data pipelines to reduce GPU idle time during training or inference.

  • Familiarity with AI infrastructure storage patterns: checkpoint storage, dataset versioning, write-once-read-many (WORM) access patterns, or storage-aware scheduling at 10k+ GPU scale. Experience managing capacity planning, cost optimization, and chargeback modeling for shared internal storage infrastructure.

  • Track record of adopting AI-assisted development tools to meaningfully improve team productivity, with concrete examples. History of growing engineers into senior ICs or leads, and building diverse, inclusive teams with strong retention.

NVIDIA's Object Storage Platform and data movement tooling form a critical layer in keeping NVIDIA's GPU fleet productive — every model trained, every checkpoint saved, and every dataset staged passes through the systems this team builds and operates. This is a high-impact role at the center of NVIDIA's AI infrastructure.

Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 272,000 USD - 431,250 USD for Level 4, and 320,000 USD - 488,750 USD for Level 5.

You will also be eligible for equity and benefits.

Applications for this job will be accepted at least until July 17, 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.

Skills Required

  • BS, MS, or PhD in Computer Science, Electrical Engineering, or related field, or equivalent experience.
  • 10+ years of software engineering experience, including 4+ years in engineering management leading teams of 10+ engineers.
  • Deep technical background in distributed storage systems, object storage platforms, or large-scale cloud data services.
  • Hands-on development experience in Go, C++, or Python (systems languages).
  • Direct hands-on experience building or scaling S3-compatible object storage systems in production cloud or private cloud environments.
  • Experience building or operating cloud storage services with accountability for reliability, performance, and capacity at scale.
  • Proven track record of shipping production software on time and managing scope, risk, and delivery across concurrent workstreams.
  • Strong experience with CI/CD, automated testing, SLO-based reliability, production observability, and incident management.
  • Demonstrated ability to attract, develop, and retain engineering talent and grow engineers into senior roles.
  • Excellent written and verbal communication skills for technical and executive audiences.
  • Prior experience designing and operating internal cloud storage services with SLAs and internal APIs.
  • Background in data movement, data staging, or prefetching tooling for AI/ML workloads to reduce GPU idle time.
  • Familiarity with AI infrastructure storage patterns (checkpoint storage, dataset versioning, WORM, storage-aware scheduling).
  • Track record adopting AI-assisted development tools to improve team productivity.

NVIDIA Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about NVIDIA and has not been reviewed or approved by NVIDIA.

  • Equity Value & Accessibility Equity awards and a discounted ESPP are highlighted as core parts of total compensation, enabling employees to share in the company’s success. Stock-based compensation and the two-year lookback ESPP are consistently described as especially valuable.
  • Healthcare Strength Health coverage is portrayed as robust, with comprehensive medical, dental, and vision options alongside mental health support and on-site care resources. Employer HSA contributions and wellness perks reinforce the depth of the offering.
  • Retirement Support Retirement programs are depicted as strong, featuring a meaningful 401(k) match with Roth options and support for Mega Backdoor Roth contributions. These elements position long-term savings as a notable advantage of the total rewards package.

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The Company
HQ: Santa Clara, CA
21,960 Employees
Year Founded: 1993

What We Do

NVIDIA’s invention of the GPU in 1999 sparked the growth of the PC gaming market, redefined modern computer graphics, and revolutionized parallel computing. More recently, GPU deep learning ignited modern AI — the next era of computing — with the GPU acting as the brain of computers, robots, and self-driving cars that can perceive and understand the world. Today, NVIDIA is increasingly known as “the AI computing company.”

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