NVIDIA Corporation

Machine Learning Systems Engineer, Networking

NVIDIA Corporation$152K — $287K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • BS in Computer Science, Statistics, or a related field (or equivalent experience) with 5+ years, MS with 3+ years, or PhD with 1+ years of relevant experience
  • Strong foundation in statistics, probability, linear algebra, and algorithm analysis
  • Experience in implementing and optimizing ML algorithms in production environments
  • Proficient in Go, C/C++, Rust, or Scala; familiarity with Python is a plus
  • Understanding of time-series databases and streaming data architectures
  • Ability to work independently and effectively manage tasks in a dynamic environment

Responsibilities

  • Implement production ML algorithms in Go for real-time streaming under strict resource constraints
  • Design and develop algorithms for anomaly detection, health scoring, and predictive analytics
  • Enhance existing ML algorithms and explore novel approaches for real-time processing
  • Build and maintain comprehensive ML pipelines from data ingestion to model inference
  • Collaborate with the Data Science team on algorithm design and transitioning research into actionable platform solutions

Benefits

  • Equity participation
  • Comprehensive benefits package
  • Flexible work environment
  • Opportunities for professional growth and development
Full Job Description
Join our team of innovative engineers who are building an AI Data Center AIOps platform that turns raw, high-volume telemetry into reliable, job-centric insights and automation for GPU fleets. As an ML Engineer on this team, you'll design and implement ML algorithms that run in real-time streaming pipelines, detecting anomalies and surfacing insights across massive-scale infrastructure before they impact AI training and inference.

The core challenge of this role is building ML algorithms that are simultaneously accurate and efficient -processing millions of telemetry streams in real time within tight CPU and memory budgets. You'll need both the data science depth to design and validate algorithms and the engineering discipline to implement them in production at scale.

What you'll be doing:
  • Implement production ML algorithms in Go - optimized for real-time streaming pipelines operating at massive scale under strict resource constraints
  • Design and develop new ML algorithms where needed: anomaly detection, health scoring, and predictive analytics on high-volume time-series telemetry from GPU and network infrastructure
  • Improve and extend existing algorithms and experiment with new approaches suited to real-time streaming constraints
  • Build and maintain end-to-end ML pipelines - from data ingestion and schema design through model inference - optimized for on-premises, latency-sensitive deployments
  • Partner with the Data Science team on algorithm design, prototype evaluation, and translating research findings into platform requirements


What we need to see:
  • A BS (or equivalent experience) and 5+ years of experience, MS and 3+ years, or PhD with 1+ years in Computer Science, Statistics, or a related field
  • Strong mathematical foundation: statistics, probability, linear algebra, and algorithm analysis
  • Proven experience implementing and optimizing ML algorithms in production - this is a coding-first role; strong implementation skills are required
  • Strong programming skills in one or more of Go, C/C++, Rust, or Scala; Python working knowledge is a plus
  • Familiarity with time-series databases and streaming data architectures
  • Ability to work independently and navigate ambiguity in a fast-paced engineering environment


Ways to stand out from the crowd:
  • Data Science background with hands-on experience building and validating ML models - bridging research and production implementation
  • Experience implementing ML algorithms directly in systems languages for latency-sensitive or resource-constrained environments
  • Research experience: knowing the latest ML literature and translating advances into practical improvements
  • Experience with Kafka-based streaming pipelines and real-time feature engineering at scale


Your base salary will be determined based on your location, experience, and the pay of employees in similar positions. The base salary range is 152,000 USD - 241,500 USD for Level 3, and 184,000 USD - 287,500 USD for Level 4.

You will also be eligible for equity and benefits.

Applications for this job will be accepted at least until July 14, 2026.

This posting is for an existing vacancy.

NVIDIA uses AI tools in its recruiting processes.

About NVIDIA Corporation

Nvidia, a global leader in graphics, gaming, and AI technology, offers Nvidia careers and internship opportunities for those passionate about driving innovation in the tech industry. you'll find a company committed to growth, teamwork, and leadership in computer science and machine learning domains.

About Nvidia

A Pioneer in Technology and Innovation

Nvidia has cemented its reputation as a powerhouse in developing advanced graphics processing units (GPUs) and has significantly contributed to the gaming industry's evolution. Moreover, its foray into AI and machine learning has opened new frontiers in technology, making Nvidia a beacon of innovation and a desirable workplace for ambitious tech professionals.

Job Opportunities

Diverse Positions in a Dynamic Field

Nvidia is continuously on the lookout for talented individuals across various domains, including hardware and software engineering, product design, marketing, and sales. Employment opportunities at Nvidia are vast, catering to a wide range of expertise and career aspirations.

Employment in Hardware and Graphics

For those fascinated by the intricacies of hardware and graphics technology, Nvidia offers positions that sit at the forefront of gaming and computing advancements.

Growth in Machine Learning and AI

Nvidia's leadership in AI and machine learning has created numerous vacancies for specialists eager to contribute to groundbreaking projects.

Recruitment in Computer Science

With the constant demand for innovation, Nvidia's recruitment efforts focus on computer science experts capable of pushing the boundaries of what's possible.

Internship Program

Opening Doors to Future Innovators

Nvidia's internship program is designed to nurture the next generation of technology leaders, offering hands-on experience in a culture that celebrates creativity and teamwork.

Benefits and Culture

Interns at Nvidia enjoy a plethora of benefits, from competitive stipends to mentorship opportunities, all within an environment that values growth and learning.

Opportunities for Students

Whether you're an undergraduate, a master's student, or a Ph.D. candidate, Nvidia's internships provide a real-world glimpse into the tech industry, offering valuable experience in various technology fields.

Pathways to Full-Time Employment

Many interns have transitioned into full-time positions, marking the start of successful careers at Nvidia. The internship program is more than a stepping stone into the company; it’s an investment in the professional development of interns. The goal is to ensure that interns are well-equipped for future challenges.

Nvidia Careers: More Than Just a Job

Nvidia offers more than just a job to its employees; it provides a front-row seat on the journey into the future of technology. Nvidia stands as a pillar of innovation with its vast opportunities in hardware, graphics, gaming, machine learning, and computer science. Nvidia careers serve as a launching pad for talented workers who aim to redefine the technological landscape. Whether through full-time positions or internships, joining Nvidia means contributing to a legacy of breakthroughs and becoming part of a global community dedicated to pushing the boundaries of what's possible.
Learn more about NVIDIA Corporation
Size
22,473 employees
Market Cap
$350.4 billion
Industry
Net Income
$4.3 billion
Founded
1993
5 Year Trend
+31.3%
Revenue
$16.6 billion
NASDAQ

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