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Senior Manager, System Software Engineering - Metropolis Accelerated and Inferencing Software

Senior Manager, System Software Engineering - Metropolis Accelerated and Inferencing Software
India, Pune
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On-site
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Full-time
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1mo ago
필수 스킬
Machine Learning
NVIDIA is a world leader in physical AI, powering self-driving cars, humanoid robots, intelligent environments, medical devices, and more. Our software platforms are at the core of this mission, enabling innovators to build world-changing products that save lives, improve working conditions, and elevate standards of living across the globe.
NVIDIA is looking for an engineering leader who is hands-on with deep learning—comfortable reading/modeling code, not just running it. You bring strong intuition for modern architectures (e.g., transformers, diffusion, VLMs etc), deep experience tuning for NVIDIA GPUs (kernels, memory, latency/efficiency trade-offs) / SOCs, and a proven record delivering robust, low-latency inference at scale. You have led teams that turn Accelerated Computing pipelines into reliable, measurable business impact for embedded and Enterprise platforms. You will work with a cohesive, high-performing team that’s been built and refined over the past nine years. An individual well aligned to experts in the industry is a great fit for this role!
What you'll be doing:
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Lead, encourage, and develop world-class engineering teams distributed across various India locations.
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Drive Strategic Implementations of TensorRT, VLLM and other accelerated frameworks for inference solutions for Edge and Enterprise devices: Lead Accelerated Computing efforts and solutions for key Metropolis verticals. Set up Proofs of Readiness (PORs) and guide their implementations.
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Performance Benchmarking: Orchestrate efforts to achieve leading performance results on industry benchmarks like MLPerf on various edge and Enterprise devices.
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Technical Leadership & Influence: Function as a technical leader for deep learning across multiple teams, giving oversight and build support. Apply customer insights to influence the composition and structure of upcoming SOC / GPU deep learning hardware.
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Scaling the team: Strategically hiring to meet new demands while also mentoring and adjusting existing teams to new deep learning challenges.
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Representing Nvidia Deep learning solutions in webinars, conferences and partner events
What we need to see:
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Masters in Computer Science/Electrical Engineering or equivalent experience.
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A minimum of 8 years of meaningful involvement in machine learning/deep learning research or practical experience, coupled with 6+ years of leadership background and overall 12+ years of industry experience.
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Over 10 years of validated expertise in the embedded software sector, holding technical leadership positions accountable for delivering outstanding production software within a multifaceted setting.
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Deep Knowledge of GPU, CPU and dedicated deep learning architecture fundamentals and low-level performance optimizations using heterogeneous computing.
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Hands-on experience with Multimedia Frameworks, Computer Vision, VLMs, LLMs, or multimodal AI systems applied to perception, data triage, or automated labeling.
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Strong expertise in large-scale data processing, systems build, or machine learning pipelines.
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Strong communication, careful planning, and technical leadership capabilities.
Ways to Stand Out from the Crowd:
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We welcome candidates with a PhD or equivalent experience in a relevant field
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Leadership role in production deployment of Smart Spaces, Physical AI with a deep understanding of constraints and advancements of sensing, computing, and model architecture evolutions.
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Ability to lead and drive global teams across multiple continents and time zones
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Deep experience with CV, LLMs, VLMs, GenAI Models, and standards.
With a competitive salary package and benefits, 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 in the world working for us. Are you a creative and autonomous director-level engineer who loves challenges? Do you have a genuine passion for advancing the state of Data Science across a variety of industries? If so, we want to hear from you!
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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
4.1
10개 리뷰
워라밸
3.5
보상
4.2
문화
4.3
커리어
4.5
경영진
4.0
75%
친구에게 추천
장점
Great culture and supportive environment
Smart colleagues and excellent people
Cutting-edge technology and learning opportunities
단점
Team-dependent experience and outcomes
Work-life balance issues with long hours
Politics and influence over competence
연봉 정보
73개 데이터
Junior/L3
Mid/L4
Junior/L3 · Analyst
7개 리포트
$170,275
총 연봉
기본급
$130,981
주식
-
보너스
-
$155,480
$234,166
면접 경험
7개 면접
난이도
3.1
/ 5
경험
긍정 0%
보통 86%
부정 14%
면접 과정
1
Application Review
2
Recruiter Screen
3
Online Assessment
4
Technical Interview
5
System Design Interview
6
Team Review
자주 나오는 질문
Coding/Algorithm
System Design
Technical Knowledge
Behavioral/STAR
뉴스 & 버즈
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.
News
·
NaNw ago
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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·
NaNw ago
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.
News
·
NaNw ago
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.
News
·
NaNw ago