Full-Time

Developer Relations Manager

Data Processing and Databases

Deadline 8/14/26
NVIDIA

NVIDIA

10,001+ employees

Designs GPUs and AI HPC platforms

Compensation Overview

$184k - $356.5k/yr

+ Equity

Company Historically Provides H1B Sponsorship

Remote in USA + 1 more

More locations: Santa Clara, CA, USA

Hybrid

Bachelor's, Master's

Category
Developer Relations
Data & Analytics (2)
,
Required Skills
Rust
Python
C/C++
Data Analysis

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Requirements
  • A Bachelor's or Master's degree or equivalent experience in Computer Science, Engineering, or a related field.
  • At least 6 years of overall professional experience in the technology industry in software engineering, developer relations, technical partnerships, solutions architecture, or product management, including hands-on experience with analytical data systems; equivalent evidence of domain authority may substitute for years of experience through published systems research, maintainership of a widely used data system, or core contributions to a query engine or data processing library.
  • Experience working with or supporting open source data projects and their contributor communities, commercial data platform and database independent software vendors, or cloud service provider data services.
  • Working proficiency in analytical data system internals, including query execution and optimization, vectorized and columnar processing, joins and aggregation, and storage formats such as Parquet and Arrow.
  • Ability to read and contribute to a large C++, Rust, or Python codebase.
  • Ability to collaborate with cross-functional teams to discuss architecture, share feedback, and deliver technical presentations or demos.
  • Ability to manage and implement technical projects, solve integration challenges, and communicate complex ideas to technical and non-technical audiences.
  • Strong communication skills and a passion for helping developers innovate with NVIDIA tools and technology.
Responsibilities
  • Build and deepen technical expertise in analytical data processing, including query execution and optimization, columnar and vectorized processing, and distributed execution.
  • Serve as a technical advocate and trusted resource for developers building and operating analytical data systems, working with cross-functional partners to drive adoption of NVIDIA technologies such as Sirius, cuCascade, RAPIDS, cuDF, nvCOMP, and CUDA-X Data Processing.
  • Demonstrate and integrate NVIDIA's data processing stack, including libraries, software development kits, and tools, into real query engines and online analytical processing databases from prototype through functioning, measured integrations across cloud, hybrid, and on-premises deployments.
  • Support developers, projects, and partners through onboarding and integration by providing working reference implementations, integration guides, and direct hands-on engineering help.
  • Track the analytical data processing ecosystem, including new engines, execution models, storage formats, and competing approaches to acceleration, and share findings with NVIDIA engineering, product, marketing, and worldwide field teams to shape adoption strategy.
  • Collaborate with engine architects and NVIDIA engineering to resolve integration problems, establish best-practice patterns, and feed technical requirements to NVIDIA product teams.
  • Define the integration surface between NVIDIA's GPU data processing libraries and third-party query engines, including plan handoff, execution and memory ownership, partner components that remain in place, and required APIs.
  • Design and run TPC-H, TPC-DS, and ClickBench measurements against CPU baselines, separate cold and warm behavior, and publish benchmark results suitable for outside scrutiny.
  • Use benchmark results to establish where GPU acceleration is proven, where it is not yet proven, and what must change.
  • Own the acceleration roadmap jointly with projects and partners, determining what gets built, in what order, and which technical bets are worth making.
  • Earn technical alignment through upstream contribution and public design review in open source, as well as joint architecture and roadmap planning with partner engineering leadership.
Desired Qualifications
  • Committer, maintainer, or sustained contributor to a widely used open source data system.
  • Experience shipping an acceleration layer or engine integration into a commercial data platform end to end.
  • Published or presented systems work at venues such as VLDB, SIGMOD, CIDR, or major open source community conferences.
  • Experience serving as a technical counterpart to partner engineering leadership, including architecture review, design review, and joint roadmap planning.
  • Hands-on familiarity with advanced computing and GPU acceleration platforms, including CUDA, RAPIDS, cuDF, nvCOMP, and related CUDA-X libraries.

NVIDIA designs and manufactures graphics processing units (GPUs) and computing platforms used for gaming, data centers, and artificial intelligence. These products work by using parallel processing to handle complex mathematical calculations much faster than standard computer processors, supported by a software ecosystem that allows developers to build and run AI models. Unlike competitors that may focus solely on hardware, NVIDIA integrates its chips with specialized software and cloud services to create a complete environment for high-performance tasks. The company’s goal is to provide the underlying technology necessary to power advanced computing, from realistic video game graphics to autonomous vehicles and large-scale data analysis.

Company Size

10,001+

Company Stage

IPO

Headquarters

Santa Clara, California

Founded

1993

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Simplify Jobs

Simplify's Take

What believers are saying

  • Vera Rubin shipments start this fall, with Foxconn citing Q4 2026 rack deliveries.
  • Analysts expect fiscal Q3 2027 revenue near $104.2 billion, up 82.8%.
  • NVIDIA raised server prices over 15% in August 2026, protecting margins despite memory costs.

What critics are saying

  • China access remains fragile after June 1, 2026 export-control tightening and H20 uncertainty.
  • Taiwan indicted Nvidia employees on August 24, 2026 over illegal AI server exports.
  • Custom AI chips from Google, Amazon, and Microsoft erode NVIDIA pricing power by 2027.

What makes NVIDIA unique

  • Vera Rubin full production on May 31, 2026 keeps NVIDIA ahead on systems.
  • NVIDIA controls GPU, networking, software, and Vera CPUs in one AI factory stack.
  • NVIDIA's ecosystem reaches Microsoft, Google, Oracle, Nebius, and SpaceXAI deployments.

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Benefits

Company Equity

401(k) Company Match

Growth & Insights and Company News

Headcount

6 month growth

0%

1 year growth

-2%

2 year growth

-3%
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