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Director - AI and Advanced Analytics
Job in
Santa Clara, Santa Clara County, California, 95053, USA
Listed on 2026-02-16
Listing for:
Applied Materials, Inc.
Full Time
position Listed on 2026-02-16
Job specializations:
-
IT/Tech
Data Engineer, Data Scientist, Data Science Manager
Job Description & How to Apply Below
** Director-level Scientific Machine Learning leader
** to drive the strategy, development, and deployment of
** next-generation ML systems for physics- and chemistry-grounded applications**, including
** physics-informed neural networks (PINNs)**,
** operator learning**,
** graph representation learning for molecules/materials (GNNs, equivariant GNNs, Graph Transformers)**, and
** generative/inverse design**.The ideal candidate combines deep technical credibility in modern ML
** and
* * strong grounding in
** physics/chemistry/materials science workflows**, with proven leadership delivering systems end-to-end—from
** problem framing and data strategy
** to
** deployment, evaluation, and scientific validation**.
* 6–12+ years building and deploying ML systems with demonstrated production and/or scientific impact (industry or research environments).
* 3+ years leading technical teams/projects (manager, tech lead, lead scientist, or equivalent), with a track record of developing senior talent.
* Deep expertise in modern ML and representation learning: + Transformers, generative models, self-/semi-supervised learning + Strong intuition for generalization, inductive bias, and model failure modes
* Strong grounding in math/stats: + Linear algebra, optimization, probability, scientific experimentation / uncertainty
* Ability to communicate complex technical decisions to non-technical stakeholders and drive alignment across R&D and engineering.
- Demonstrated experience in
** Scientific ML**, including one or more of:
* ** Physics-informed neural networks (PINNs)*
* * PDE-constrained learning, differentiable physics, operator learning
* Surrogate modeling for scientific simulation
- Strong experience with
** graph ML
** for scientific domains:
* Molecular/materials GNNs, Graph Transformers, equivariant models preferred
- Strong proficiency in
** Python
* * and modern ML frameworks (
** PyTorch preferred**).
* Domain depth in one or more: + Materials science (batteries, catalysts, polymers, semiconductors, alloys) + Computational chemistry/physics (DFT, MD), continuum modeling (CFD/FEA), multiphysics simulation
* Experience with: +
** Uncertainty quantification (UQ)**, calibration, Bayesian methods + Active learning, Bayesian optimization, multi-objective optimization + Scientific data systems: ELN/LIMS integration, instrument pipelines, data provenance
* Publications, patents, open-source contributions in scientific ML/materials AI.
* Experience with large-scale compute and data: + HPC/GPU clusters, distributed training, Spark/Ray/Dask, workflow orchestration
* MS/PhD in Physics, Chemistry, Materials Science, CS, EE, Applied Math/Stats (or equivalent practical expertise).
* Serve as strategic interface with and across across business functions such as Sales, Operations, Engineering, Service and Finance for the purpose of BI application/platfrom and business alignment. Drive cross functional governance and alignment to leverage and optimize BI application and platform leverage, BKM sharing, standards, and delivery model.
* Directs organizational teams executing the build, test and deployment of complex, integrated BI application and platform solutions. Ensures these solutions are technically sound, cost effective and adhere to accepted industry best practices. Utilize data and metrics to drive continuous improvement.
* Develop and maintain relationships with BI and data management partners and suppliers. Drive assessment of vendor strategies, roadmaps and next generation technologies and incorporate into application and platform architectural strategy and capability roadmaps.
* Directs personnel providing BI, Big Data and AI/ML application and platform support services to meet customer performance, availability, service level agreemens and customer satisfaction targets. Ovresees monitoring of specific IT systems or set of systems and tuning of such systems for availability and performance. Drives completion of root cause analysis and resolution of outages or incident trends coordinating with infrastructure and technical teams, support providers and application vendors.
Drives…
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