Data Scientist - Agentic AI / ML

Applied MaterialsSanta Clara, CA
23hOnsite

About The Position

Applied Materials is a global leader in materials engineering solutions used to produce virtually every new chip and advanced display in the world. We design, build and service cutting-edge equipment that helps our customers manufacture display and semiconductor chips – the brains of devices we use every day. As the foundation of the global electronics industry, Applied enables the exciting technologies that literally connect our world – like AI and IoT. If you want to push the boundaries of materials science and engineering to create next generation technology, join us to deliver material innovation that changes the world. Applied Materials’ Joint Operations Leadership (JOLT) Data Science team is seeking a Data Scientist to join our growing organization. JOLT plays a critical role in rebuilding customer trust, creating an agile and resilient supply chain, reshaping supplier relationships, driving operational excellence, and maximizing profitability through advanced analytics, AI, and machine learning. This role offers the opportunity to work on high‑impact, cross‑functional initiatives and to develop end‑to-end AI solutions—from problem formulation to production deployment.

Requirements

  • Advanced degree (MS or PhD) in a quantitative field (e.g., Statistics, Computer Science, Economics, Operations Research).
  • 0-2 years of industry experience in applied machine learning or related AI work.
  • Hands-on experience building GenAI-focused applications (e.g., agents, reasoning workflows, or RAG) and a solid understanding of how large language models are architected and operated.
  • Can work collaboratively with cross-functional teams.
  • Hands-on experience with: building GenAI-focused application and applying LLMs and agentic AI (e.g., agents, reasoning workflows, or RAG)
  • Have personally implemented models in common Deep Learning frameworks such as PyTorch, Jax or TensorFlow.
  • MLOps, including model deployment, versioning and performance monitoring in production environments
  • Proficiency in Python, SQL, and tools such as scikit-learn, and forecasting libraries.
  • Excellent analytical and problem-solving abilities, Machine Learning Concepts
  • Strong communication and storytelling skills - able to simplify complexity and influence executive stakeholders.

Responsibilities

  • Works in project teams developing difficult analytical models, algorithms and automated processes, research and develop machine learning models from inception to deployment.
  • Work on GenAI and LLM projects, including fine-tuning models, creating embedding-based search systems, and developing AI-driven prototypes to enhance business operations.
  • Directing architects to design and solution GenAI architectures for stakeholders, specifically for plugin-based solutions and custom GenAI application builds.
  • Use data mining and machine learning algorithms to provide insights into historical and real-time data for projects such as material forecast, demand forecast, pattern recognition, etc.
  • Interfaces with stakeholders for requirements analysis and special requests and schedules; derives insights and works with business units to determine actions and KPI for those actions.
  • Identify opportunities for forecast accuracy improvement and provide business insights and additional perspectives to Service Supply Chain leadership
  • Collaborate with Material Planning, Field Operations, Inventory Management, NPI, Production Demand Planning, Reliability Engineering, Service Campaigns Teams to gather data and bring information on key business drivers that impact the future demand on Service Parts and Accessories
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