
Pioneering accelerated computing and AI
Machine Learning Engineer - Humanoid Robotics
NVIDIA is seeking exceptional machine learning engineers to join our world-class robotics initiatives focused on humanoid loco-manipulation. As part of the Isaac Loco-Manipulation team, you’ll collaborate with industry-leading experts, contribute to robotics foundation models including GR00T and Cosmos, and help define the future of humanoid robot capabilities. We are looking for strategic, ambitious, and creative individuals passionate about advancing the boundaries of robotics.This is demanding, cross-disciplinary work at the intersection of cutting-edge research and rigorous engineering.
What you'll be doing:
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Collaborate with researchers and engineers to define and execute projects in humanoid robotics loco-manipulation and mobile manipulation areas.
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Contribute to the development and advancement of GR00T and Cosmos foundation models.
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Develop reference workflows with Isaac Lab and Newton for humanoid and mobile manipulation dexterous tasks.
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Advance technologies for robot learning and synthetic data generation using human videos.
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Design, implement, and deploy novel algorithms for humanoid robot locomotion and manipulation in both simulated and real-world environments.
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Transfer innovations into products, with deliverables including prototypes, open source software contributions, patents, and/or publications in top conferences and journals.
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Drive the full development lifecycle from model and algorithm design, with sim-to-real transfer, to rigorous on-robot validation and production deployment.
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Collaborate cross-functionally with teammates and partners to share best practices and advance shared goals.
What we need to see:
This role prioritizes candidates with proven execution bandwidth of applied research and engineering and a strong delivery track record on robotics platforms.
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PhD or Master’s degree in Robotics, Computer Science, or a related field (or equivalent experience).
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3+ years of experience working on robotics software.
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Experience with deep learning frameworks such as Py Torch, JAX, or Tensor Flow, and physics simulation tools like Isaac Sim/Lab or Mu JoCo.
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Expertise in foundation models for robotics and 3D perception.
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Experience with sim-to-real and real-to-sim transfer in robotics.
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Deep knowledge of robot learning, including imitation and reinforcement learning.
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Hands-on experience of real robot testing, humanoid experience is preferred.
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Strong software engineering fundamentals, including proficiency in C++ and Python.
Ways to stand out from the crowd:
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Experience learning from human video demonstrations or human-object reconstruction.
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Expertise in dexterous bimanual manipulation or whole-body control.
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Proven track record in robotics research, including publications in top conferences (e.g., RSS, ICRA, CoRL, NeurIPS, CVPR, ICLR).
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Demonstrated technical leadership experience.
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NVIDIA 소개

NVIDIA
PublicA computing platform company operating at the intersection of graphics, HPC, and AI.
10,001+
직원 수
Santa Clara
본사 위치
$4.57T
기업 가치
리뷰
10개 리뷰
4.4
10개 리뷰
워라밸
2.8
보상
4.5
문화
4.2
커리어
4.3
경영진
3.8
78%
지인 추천률
장점
Cutting-edge technology and innovation
Excellent compensation and benefits
Great team culture and collaboration
단점
High pressure and expectations
Poor work-life balance and long hours
Fast-paced environment leading to burnout
연봉 정보
79개 데이터
L3
L4
L5
L3 · Data Scientist IC2
0개 리포트
$177,542
총 연봉
기본급
-
주식
-
보너스
-
$150,910
$204,174
면접 후기
후기 5개
난이도
3.0
/ 5
면접 과정
1
Application Review
2
Recruiter Screen
3
Technical Phone Screen
4
Onsite/Virtual Interviews
5
Team Matching
6
Offer
자주 나오는 질문
Coding/Algorithm
System Design
Behavioral/STAR
Technical Knowledge
Past Experience
최근 소식
Negotiating NVIDIA's Offer
Base, stock, and sign-on negotiable. Recruiters invested in closing candidates. CEO reviews all 42K employee salaries monthly. Stock growth has made many employees millionaires.
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NVIDIA Company Reviews
WLB rated 3.9/5 (lowest category). 64% satisfied with WLB but 53% feel burnt out. Compensation rated 4.4-4.5/5. Experience highly team-dependent.
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NVIDIA Interview Discussions
Technical bar is high with 4-6 rounds. Process takes 4-8 weeks. Expect C++ questions, LeetCode medium, and system design. Difficulty rated 3.16/5.
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NVIDIA Culture Discussions
Team-dependent experience; sink-or-swim culture that rewards high performers but can be overwhelming. No politics, flat structure, but demanding workload with some teams requiring evening/weekend work.
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