Supply Chain Jobs in Santa Clara, CA
Supply Chain jobs in Santa Clara are in strong demand, concentrated in the Central Expressway corridor, the Tasman District near Levi's Stadium, and the industrial zones off Lafayette Street, across semiconductor, consumer electronics, and medtech manufacturing. Employers hiring right now include Oracle, Applied Materials, and NVIDIA. Find a role that fits below and apply directly.
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NVIDIA is at the center of the AI infrastructure revolution, building the accelerated computing systems that power some of the planet’s most advanced AI factories. Behind those systems is one of the most complex hardware supply chains in the industry. It includes wafers, sophisticated assembly methods, interconnect materials, printed circuit boards, power components, and other capacity-constrained technologies. Our team is developing and operating a proprietary mathematical optimization model that helps determine how much supply NVIDIA needs. It identifies constraints and allocates unusual capacity across a multi-quarter planning horizon to improve business opportunity while managing supply risk. Built on linear programming and dual-variable analysis, the model transforms complex supply constraints into clear, auditable insights. These insights can advise high-level planning, sourcing, vendor coordination, purchasing, and supplier capacity decisions.
We are looking for a deeply quantitative optimization modeler who can take ownership of this production model, extend its mathematical capabilities, and ultimately become the technical authority for its optimization architecture. This is an opportunity for someone who sees supply chain planning fundamentally as a mathematical modeling problem and wants their work to directly influence consequential decisions at the frontier of AI infrastructure. Does this sound like a great new adventure? Then come show us what you've got!
What you’ll be doing:
Own and extend a production linear programming optimization model. Develop constraint matrices, objective functions, dual-variable extraction logic, and diagnostics. Maintain a rigorous grasp of the system's mathematical behavior.
Translate evolving physical supply chain realities — including new wafer nodes, packaging architectures, component categories, capacity limits, yields, and lead times — into mathematical formulations the optimization engine can solve.
Analyze shadow prices, sensitivities, and other LP diagnostics to identify the economic impact of supply constraints and turn model results into actionable insights for executive planning, procurement, and supplier discussions.
Maintain the integrity of model inputs and assumptions, understanding data lineage, schemas, dependencies, and the downstream implications of changes or inaccuracies.
Partner directly with supply chain, procurement, operations, and engineering teams to identify high-value planning decisions, quantify constraints, stress-test assumptions, and develop scenarios that improve supply and resource management.
Serve as a quantitative thought partner to senior supply chain leadership, challenging assumptions, evaluating boundary conditions, and evolving the model architecture as NVIDIA’s products and supply network become increasingly complex.
Explore opportunities to augment the deterministic optimization foundation with AI, machine learning, GPU-accelerated optimization, and NVIDIA technologies such as cuOpt.
What we need to see:
Master’s degree or PhD in the field of Operations Research, Industrial Engineering, Applied Mathematics, Management Science, or a closely related quantitative subject area, or equivalent experience.
A minimum of 8 years of experience in a higher education, modeling, engineering, or data science position.
Strong hands-on experience formulating and solving linear programming or mixed-integer programming problems, including direct experience developing objective functions and constraints and extracting and interpreting dual variables.
Deep understanding of constrained optimization and the mathematical foundations underlying LP/MIP, including duality, shadow prices, sensitivity analysis, degeneracy, numerical conditioning, and solver behavior.
Strong scientific computing skills combined with proficiency in mathematical optimization techniques, with experience implementing production or research optimization models in MATLAB, Julia, R, Python, or comparable quantitative computing environments.
Understanding of supply chain modeling concepts such as bills of materials, capacity constraints, lead times, yields, allocation decisions, and multi-period planning.
Ability to translate complex physical or organizational systems into rigorous mathematical formulations and explain model assumptions, behavior, tradeoffs, and results to both analytical and operational collaborators.
Demonstrated ability to operate as a highly hands-on individual contributor, taking end-to-end ownership of complex quantitative work while collaborating effectively with senior engineering and commercial partners.
Ways to stand out from the crowd:
Advanced research or publications in operations research, mathematical optimization, supply chain optimization, prioritization, or related fields, including work presented through INFORMS, IISE, or peer-reviewed journals.
Deep experience with LP/MIP solvers and mathematical programming environments such as MATLAB Optimization Toolbox, Gurobi, CPLEX, or similar technologies, including interpretation of dual variables and solver diagnostics beyond basic model execution.
Experience developing optimization models using real-world manufacturing or supply chain data, particularly models involving semiconductor capacity, wafer starts, yields, advanced packaging, substrates, PCBs, or other hardware constraints.
Experience with semiconductor, electronics, or AI infrastructure supply chains and an understanding of the relationships among manufacturing capacity, component availability, product demand, and revenue opportunity.
Familiarity with NVIDIA cuOpt, GPU-accelerated optimization, or techniques that combine deterministic optimization with AI or machine learning.
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.See All 461+ Supply Chain Jobs in Santa Clara
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Find Supply Chain JobsSupply Chain Job Market in Santa Clara
Who's Hiring
- Oracle198

- Applied Materials119

- NVIDIA79

- Marvell Technology26

- Biomerics13

Top Industries Hiring
- Technology & Software
- Electronics & Hardware
Supply Chain Jobs in Santa Clara: Frequently Asked Questions
How do I get a supply chain job in Santa Clara?
Target the semiconductor, consumer electronics, and medtech companies that anchor Santa Clara's industrial base, particularly those clustered along the Central Expressway corridor and near the Great America business parks. Familiarity with high-volume electronics manufacturing, component procurement, or contract manufacturer relationships gives candidates a clear edge here. Certifications in demand planning or inventory optimization, combined with hands-on experience with ERP systems like SAP or Oracle, signal readiness to local hiring managers.
Which companies hire supply chains in Santa Clara?
Employers hiring supply chains in Santa Clara right now include Oracle, Applied Materials, and NVIDIA, based on current listings on Migrate Mate as of September 2026. Santa Clara's hiring base skews heavily toward large semiconductor and hardware manufacturers, contract electronics firms, and the regional distribution and logistics operations that support them.
Are there remote supply chain jobs in Santa Clara?
Yes, though remote availability depends heavily on the role, since warehouse, logistics, and manufacturing-floor positions are almost always on-site, while demand planning, procurement analytics, and supplier management roles can be done remotely. About 22% of supply chain openings tied to Santa Clara are remote or hybrid as of September 2026, reflecting the tech-adjacent nature of many roles here. Strategic sourcing and S&OP analyst positions are the most commonly remote in Santa Clara.
How can I get a supply chain job in Santa Clara with little or no experience?
The most realistic entry path in Santa Clara is through operations coordinator or materials planning coordinator roles at contract electronics manufacturers and large hardware companies that run structured rotation programs. Local employers in the semiconductor supply chain frequently hire recent graduates into procurement support or logistics analyst positions. Hands-on experience with inventory systems, even from an internship or part-time warehouse role, combined with a coursework background in operations or industrial engineering, makes a candidate stand out in this market.
Which industries hire the most supply chains in Santa Clara?
Most supply chain openings in Santa Clara sit in Technology & Software and Electronics & Hardware, per current listings on Migrate Mate as of September 2026. Santa Clara's concentration of semiconductor fabs, consumer electronics headquarters, and medtech device manufacturers creates consistent, specialized demand for procurement, logistics, and operations talent tied directly to hardware production cycles.
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