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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # GPU System Performance Architect - **Company:** NVIDIA Ltd. - **Location:** Hillsboro, OR, United States - **Experience:** Expert - **Salary:** $224,000.0 - **Contract:** Permanent contract - **Skills:** Artificial Intelligence, Data Analysis, Software Applications, Artificial Neural Networks, Big Data, Cloud Computing, Profiling, Computer Engineering, Computer Literacy, Data Centers, Data Visualization, Microprocessors, General-Purpose Computing on Graphics Processing Units, Hardware Virtualization, Internet Services, Metropolitan Regional Information Systems, PCI Express, Cloud Services, Smart Devices, Systems Architecture, Graphics Processing Unit (GPU), Computer Network Operations, Deep Learning, Parallel Computation, Information Technology - **Published:** September 17, 2026 - **Apply:** https://www.careerbuilder.com/job-details/gpu-system-performance-architect-hillsboro-or--fdad8307-b711-4db0-9ac2-57e96612e2b7 ## About the Role * You have a Masters or PhD in a relevant discipline such as Computer Science, Electrical Engineering, or Computer Engineering (or equivalent experience) with 10 years of relevant work or research experience. * Excellent mathematical and analytical skills. * Work experience that shows a deep knowledge of computer architecture. * Strong communication, organizational and interpersonal skills with and a real passion for working as a team * Experience with analytical performance modeling, simulation, profiling and analysis. Ways you can stand out from the crowd: * You possess a background in data center/cloud computing design with experience in crafting hardware for a virtualized environment. * Expertise in data analysis and visualization. * Prior experience and familiarity with GPU computing and parallel programming models. * Prior experience in performance modeling, characterization and optimization of PCIe and IO-centric workloads., GPU computing is the most productive and pervasive platform for deep learning and AI. It begins with the most advanced GPUs and the systems and software we build on top of them. We integrate and optimize every deep learning framework. We work with the major systems companies and every major cloud service provider to make GPUs available in data centers and in the cloud. And we create computers and software to bring AI to edge devices, such as self-driving cars and autonomous robots. With deep learning, we can teach AI to do almost anything. New internet services, like Google Assistant, have learned speech from sound and provide a more natural way to access information. Self-driving cars use deep learning to recognize the space the car inhabits, the lanes in which it drives, and the objects it must avoid. In healthcare, neural networks trained with millions of medical images can find clues in MRIs that until now could only be found through invasive biopsies. These are just a few, Analysis Skills, Artificial Intelligence (AI), Automotive Automation, Autonomous Driving Systems, Cloud Computing, Communication Skills, Computer Architecture, Computer Engineering, Computer Science, Computer Software, Computer Systems, Data Analysis, Data Modeling, Data Visualization Tools, Deep Learning, Electrical Engineering, GPU (Graphics Processing Unit), Google Assistant, Hardware Virtualization, Healthcare Providers, Industry/Trade Analysis, Internet/Online Service, Interpersonal Skills, Mathematics, Medical Imaging, Microprocessor Architecture, Network Operations Center, Organizational Skills, PCI Express (PCI-E), Parallel Computing, Parallel Programming, Performance Management, Performance Modeling, Simulation, System Architecture, Team Player, Training/Teaching ## Description * Develop innovative processor and system architectures to extend the state of the art in GPU-accelerated cloud computing. * You'll analyze trade-offs in system performance, cost and efficiency by developing analytical models, simulators and data visualization tools. * Understand and analyze the interactions between hardware and software in large-scale data center deployments of GPU-accelerated systems. * Collaborate across the company to guide the direction of GPU-accelerated cloud computing, working with software, product and business teams. ## Related Videos - [Alibaba Big Data and Machine Learning Technology](https://www.wearedevelopers.com/videos/37-alibaba-big-data-and-machine-learning-technology) - [Accelerating Python on GPUs](https://www.wearedevelopers.com/videos/859-accelerating-python-on-gpus) - [Profiling Symfony & PHP apps with Blackfire](https://www.wearedevelopers.com/videos/265-profiling-symfony-php-apps-with-blackfire) - [Accelerating Python on GPUs](https://www.wearedevelopers.com/videos/1521-accelerating-python-on-gpus) - [Enhancing Workload Security in Kubernetes](https://www.wearedevelopers.com/videos/356-enhancing-workload-security-in-kubernetes) - [PySpark - Combining Machine Learning & Big Data](https://www.wearedevelopers.com/videos/44-pyspark-combining-machine-learning-big-data) ## Related Articles - [7 Cloud Computing Trends Coming in 2025 for Developers](https://www.wearedevelopers.com/magazine/412-7-cloud-computing-trends-coming-in-2025-for-developers) - [Got AI ideas but no money? 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