Intern - F10 PEE WET

Micron Technology

Singapore

On-site

SGD 20,000 - 33,000

Full time

13 days ago
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Job summary

Micron Technology, Singapore, invites a bachelor’s or master’s student for a full-time Process Engineering internship focused on wafer thermal management and plasma strip optimization. You will conduct structured experiments, apply DOE, and develop data-driven insights under experienced engineers.

Responsibilities include analyzing chuck temperature effects, building predictive analytics models, and delivering actionable recommendations to improve robustness, yield, and cost performance.

Qualifications

  • Strong analytical, experimental and problem-solving skills.
  • Familiarity with statistical analysis, DOE, data visualization, or process modeling.
  • Exposure to Python, JMP, Minitab, Power BI or similar tools is advantageous.
  • Pursuing a bachelor’s or master’s degree in engineering or related field.

Responsibilities

  • Plan and conduct experiments to study chuck temperature effects on wafer thermal behavior and process performance.
  • Apply Design of Experiments and statistical methods to identify key temperature relationships.
  • Develop data-based optimization recommendations to improve robustness, yield, productivity, or cost performance.
  • Deliver a thermal-characterization and DOE study report and a predictive analytics approach.

Skills

Analytical thinking
Experimentation
Statistics
Data visualization
Communication
Machine Learning interest

Education

Bachelor or Master in Engineering/Science

Tools

Excel
Python
JMP
Minitab
Power BI

Job description

Our vision is to transform how the world uses information to enrich life for all.

Join an inclusive team passionate about one thing: using their expertise in the relentless pursuit of innovation for customers and partners. The solutions we build help make everything from virtual reality experiences to breakthroughs in neural networks possible. We do it all while committing to integrity, sustainability, and giving back to our communities. Because doing so can fuel the very innovation we are pursuing.

Location

F10 site, 1 North Coast Drive, Singapore 757432

Department

Process Engineering

Project Title

PSK Thermal Optimization for Advanced Semiconductor Manufacturing

Project Description

The intern will undertake a structured Process Engineering project focused on wafer thermal management and plasma strip process optimization.

Under the guidance of experienced engineers, the intern will investigate the impact of chuck temperature on wafer thermal behaviour, film properties, and process performance. The project will involve experimentation, Design of Experiments, statistical analysis, process modelling, and data visualization.

The intern will also gain exposure to AI-Enabled data exploration and predictive analytics for identifying process relationships and optimization opportunities. Through this project, the intern will develop practical knowledge of semiconductor manufacturing while contributing data-based recommendations for improving process robustness, yield, productivity, and cost performance.

Objective of the Project
  • Develop an understanding of wafer thermal management and plasma strip processing in semiconductor manufacturing.
  • Characterize the relationship between chuck temperature, wafer thermal behaviour, film properties, and process performance.
  • Apply Design of Experiments and statistical analysis to identify key process-temperature relationships.
  • Develop data-based optimization recommendations that may improve process robustness, yield, productivity, or cost performance.
Opportunities for Full-Time Employment

High-performing interns may be considered for future internship or full-time employment opportunities, subject to business requirements, position availability, and the applicable selection process.

Project Scope
  • Study the assigned plasma strip process, equipment configuration, process parameters, and relevant thermal behaviour.
  • Plan and conduct defined experiments to investigate the impact of chuck temperature on wafer thermal behaviour, film properties, and process performance.
  • Develop and complete Design of Experiments studies to identify significant process-temperature relationships and optimization opportunities.
  • Analyze experimental and manufacturing data using statistical techniques, process modelling, visualization, and relevant AI-Enabled workflows.
  • Develop recommendations for improving process robustness, yield, productivity, or cost performance based on the project findings.
Learning Opportunities
  • Gain practical exposure to semiconductor manufacturing, plasma processing, and wafer thermal management.
  • Develop experience in Design of Experiments, statistical analysis, process modelling, and data-driven decision-making.
  • Learn how process engineers evaluate thermal behaviour, film properties, process performance, and manufacturing variation.
  • Gain exposure to Machine Learning fundamentals, predictive analytics, Generative AI, and AI Assistants in a process-engineering context.
Deliverables
  • A thermal-characterization and Design of Experiments study report.
  • A documented analysis of the relationship between chuck temperature and selected process-performance indicators.
  • A predictive analytics model or methodology linking thermal conditions to process performance.
  • Data-based optimization recommendations and a final technical presentation.
Impact of the Project
  • Improve understanding of the relationship between chuck temperature, wafer thermal behaviour, and process performance.
  • Identify potential opportunities to improve plasma strip process robustness and manufacturing consistency.
  • Provide analytical findings that may inform future yield, productivity, and cost-improvement initiatives.
Skillsets Required
  • Strong analytical, experimental, and problem-solving skills.
  • Familiarity with statistical analysis, Design of Experiments, data visualization, or process modelling.
  • Experience with Microsoft Excel; exposure to Python, JMP, Minitab, Power BI, or similar analytical tools is advantageous.
  • Interest in semiconductor manufacturing, Machine Learning, Generative AI, and AI-Enabled data-analysis workflows.
  • Ability to communicate technical findings clearly and collaborate with engineering professionals.
Course of Interest

The ideal candidate should be pursuing a bachelor’s or master’s degree in chemical engineering, Materials Science, Mechanical Engineering, Electrical Engineering, Physics, or a related engineering or scientific discipline.

Duration of Period

The ideal candidate should be able to commit to a full-time internship period of at least four months.

About Micron Technology, Inc.

We are an industry leader in innovative memory and storage solutions transforming how the world uses information to enrich lifefor all. With a relentless focus on our customers, technology leadership, and manufacturing and operational excellence, Micron delivers a rich portfolio of high-performance DRAM, NAND, and NOR memory and storage products through our Micron® and Crucial® brands. Every day, the innovations that our people create fuel the data economy, enabling advances in artificial intelligence and 5G applications that unleash opportunities — from the data center to the intelligent edge and across the client and mobile user experience.

To learn more, please visit micron.com/careers

All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, veteran or disability status.

To request assistance with the application process and/or for reasonable accommodations, please contact hrsupport_sg@micron.com

Micron Prohibits the use of child labor and complies with all applicable laws, rules, regulations, and other international and industry labor standards.

Micron does not charge candidates any recruitment fees or unlawfully collect any other payment from candidates as consideration for their employment with Micron.

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