Engineering Intern, AI/ML & Tool Innovation

Lam Research

Confirmed live today High trust

Quick summary

Work type
On-site
Location
Tualatin, OR
Employment
Intern
Posted
4 days ago
Freshness
Confirmed live today
Closes
Mar 31, 2027

Market check

Salary context

How this pay compares to similar roles

Similar $165k
$97k most similar roles pay here $233k

This listing doesn't post a salary. Most similar roles pay $110,587–$219,650.

Based on 240 similar postings.

Employer

About Lam Research

Lam Research Corporation is a leading American supplier of wafer-fabrication equipment and services to the global semiconductor industry.

Lam Research currently has 138 open roles on FindRole.

Listed pay typically runs $114,000–$253,000 across 87 roles with salary data.

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At a glance

TL;DR · Engineering Intern, AI/ML & Tool Innovation

2027 Engineering Intern - AI/ML & Tool Innovation (SABRE Electroplating) - Masters/PhD (6 months) is a role within the SABRE Process Development team focused on shaping next-generation semiconductor electroplating equipment. The intern will apply engineering principles, data analytics, machine learning, and automation to enhance tool performance, process understanding, and intelligent equipment capabilities. Daily responsibilities include working on projects involving tool design concepts, experimental data analysis, predictive modeling, digital twins, machine vision, sensor integration, and AI-driven process optimization. Candidates should possess strong engineering fundamentals and experience with Python, data analytics, machine learning, or computer vision. The role requires the ability to work across hardware, software, and process disciplines to solve complex problems in advanced manufacturing systems. This position specifically addresses technical challenges in semiconductor equipment, automation, control systems, and digital twin integration for electroplating processes.

What you'll do

  • Apply engineering principles to improve semiconductor electroplating equipment performance.
  • Analyze experimental data to enhance process understanding and tool capabilities.
  • Develop predictive models and digital twins for manufacturing systems.
  • Implement machine vision and sensor integration into hardware designs.
  • Utilize machine learning and AI to optimize manufacturing processes.
  • Design new concepts for semiconductor tool hardware and automation.
  • Integrate software, hardware, and process disciplines to improve equipment intelligence.

What we're looking for

  • Pursuing an MS or PhD in Mechanical Engineering, Electrical Engineering, Chemical Engineering, Computer Science, Data Science, Robotics, or a related field (preferred).
  • Strong engineering fundamentals and problem-solving skills (preferred).
  • Experience with Python, data analytics, machine learning, or computer vision (preferred).
  • Interest in semiconductor equipment, automation, control systems, or digital twins (preferred).
  • Ability to work across hardware, software, and process disciplines (preferred).

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