Role at a glance
- Salary
- $184K – $356.5K/yr
- Location
- Santa Clara, California, United States
- Work arrangement
- On-site
- Employment
- Full-time
- Experience
- 10+ years of hands-on work experience
- Education
- BS/MS/PhD in CS, EE, sciences or related fields (or equivalent experience)
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Role Summary
The Senior Perception Engineer will develop and productize NVIDIA’s autonomous driving solutions. The role focuses on deep-learning-based 3D obstacle perception using multi-sensor fusion across cameras, ultrasonic sensors, and radar, with an emphasis on robustness, accuracy, efficiency, and production readiness.
What You'll Do
- Develop multi-sensor-fusion deep learning models for obstacle perception and fusion in complex driving environments.
- Research and develop deep learning and multi-sensor-fusion algorithms for 3D obstacle perception across challenging and diverse scenarios.
- Analyze solutions using large-scale real and synthetic benchmark data, build KPIs, and optimize models iteratively.
- Productize 3D obstacle perception solutions to meet safety, latency, and software robustness requirements.
- Work with data collection and labeling teams to prioritize high-value data collection and labeling for perception accuracy.
Generated from the employer's posting. Verify important details before applying.
View full postingQualifications
10+ years of hands-on work experience in developing deep learning and algorithms; experience in multi-sensor fusion for perception tasks; production deep learning model development; data-driven development; strong programming skills in Python and/or C++; outstanding communication and teamwork skills.
Required
- 10+ years of hands-on work experience in developing deep learning and algorithms
- Proficiency in using deep learning frameworks (e.g., PyTorch)
- Experience in multi-sensor fusion using cameras, ultrasonic sensors, and radar for perception tasks
- Experience in high-resolution world reconstruction
- Production deep learning model development, including data verification, model architecture design, loss function engineering, and...
- Experience in data-driven development and collaboration with data and ground truth teams
- Strong programming skills in Python and/or C++
- Outstanding communication and teamwork skills
Preferred
- Experience on end-to-end deep learning model development
- Expertise in developing perception solutions for autonomous driving or robotics using deep learning with multi-sensor input
- Hands-on experience developing and deploying DNN-based solutions to embedded platforms for real time applications
- Understanding of 3D computer vision, camera calibrations including intrinsic and extrinsic, and sensor fusion principles
- Experience with development in CUDA language
- Ability to implement CUDA kernels as part of training or inference pipelines
Original job description
Content provided by the employer
Original job description
Content provided by the employer
Intelligent machines powered by Artificial Intelligence computers that can learn, reason and interact with people are no longer science fiction. GPU Deep Learning has provided the foundation for machines to learn, perceive, reason and solve problems. Now, NVIDIA’s GPU runs Deep Learning algorithms, simulating human intelligence, and acts as the brain of computers, robots and self-driving cars that can perceive and understand the world.
We are now looking for an extraordinary Senior Perception Engineer to develop and productize NVIDIA’s autonomous driving solutions. As a member of our perception team, you will work on building world-class 3D obstacle perception solutions based on multi-sensor fusion, including cameras, ultrasonic sensors, and radar, to estimate high-resolution reconstruction of the world. The primary approach will be deep learning. You will be challenged to improve robustness and accuracy as well as efficiency of the solutions to fully enable autonomous driving anywhere and anytime.
What you’ll be doing:
Perception experts with application focus will be on multi-sensor fusion based deep learning model development for obstacle perception/fusion in complex driving environments.
Applied research and development of innovative deep learning and multi-sensor fusion algorithms to improve output accuracy of 3D obstacle perception solutions under challenging and diverse scenarios.
Identify and analyze the strength and weakness of the developed 3D obstacle perception solutions using large scale benchmark data (both real and synthetic) and improve them iteratively through KPI building and optimization. This includes careful data verification, model architecture design, understanding details of loss function engineering, and being capable of finding detailed ML bugs and iterating toward perfection.
Productize the developed 3D obstacle perception solutions by meeting product requirements for safety, latency, and SW robustness, with a strong emphasis on production deep learning model development.
Drive and prioritize data-driven development by working with large data collection and labeling teams to bring in high value data to improve perception system accuracy. Efforts will include data collection prioritization and planning, labeling prioritization, so that value of data is maximized.
What we need to see:
10+ years of hands-on work experience in developing deep learning and algorithms to solve sophisticated real world problems, and proficiency in using deep learning frameworks (e.g., PyTorch).
Experience in multi-sensor fusion (cameras, ultrasonic sensors, radar) for perception tasks, particularly in high-resolution world reconstruction.
Proven experience in production deep learning model development, including careful data verification, model architecture design, loss function engineering, and debugging ML models.
Experience in data-driven development and collaboration with data and ground truth teams.
Strong programming skills in python and/or C++.
Outstanding communication and teamwork skills as we work as a tightly-knit team, always discussing and learning from each other.
BS/MS/PhD in CS, EE, sciences or related fields (or equivalent experience)
Ways to stand out from the crowd:
Experience on end-to-end deep learning model development is a plus.
Proven expertise in developing perception solutions for autonomous driving or robotics using deep learning with multi-sensor input.
Hands-on experience in developing and deploying DNN-based solutions to embedded platforms for real time applications.
Good understanding of fundamentals of 3D computer vision, camera calibrations including intrinsic and extrinsic, and sensor fusion principles.
Experience with development in CUDA language. The ability to implement CUDA kernels as part of training or inference pipelines.
You will also be eligible for equity and benefits.
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.About the company
NVIDIA
Large Enterprise
NVIDIA is a leading technology company renowned for its graphics processing units (GPUs) and innovative computing solutions that enhance visual experiences across multiple platforms, including gaming, scientific research, and artificial intelligence. Founded in 1993, the company has expanded its offerings to include powerful AI frameworks and deep learning platforms, making significant contributions to industries such as gaming, data centers, automotive, and healthcare. NVIDIA's commitment to pushing the boundaries of visual computing continues to drive advancements in both hardware and software, positioning the company at the forefront of emerging technologies and digital transformation.
NVIDIA is a leading technology company renowned for its graphics processing units (GPUs) and innovative computing solutions that enhance visual experiences across multiple platforms, including gaming, scientific research, and artificial intelligence. Founded in 1993, the company has expanded its offerings to include powerful AI frameworks and deep learning platforms, making significant contributions to industries such as gaming, data centers, automotive, and healthcare. NVIDIA's commitment to pushing the boundaries of visual computing continues to drive advancements in both hardware and software, positioning the company at the forefront of emerging technologies and digital transformation.