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Intern, Photo Manufacturing Data Analytics and AI

Micron Technology

Fab 10N/X, SingaporeInternshipInternH-1B sponsor company
Sign in to applyVerified 2h ago
Location
Fab 10N/X, Singapore
Employment
Internship
Work model
On-Site
Level
Intern
H-1B history
69 approvals (FY2023)
Posted
Sep 21, 2026

Skills

Power BITableau

About this role

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 Singapore Department Photo Manufacturing Project Title Photo Train Size Optimization Through Advanced Data Analytics Project Description The Photo Manufacturing area plays a critical role in wafer fabrication, where train size directly influences tool utilization, manufacturing cycle time, work-in-progress flow, and factory output. This project focuses on using advanced data analytics to optimize Photo train size by identifying the key operational factors that influence throughput and productivity. The intern will develop analytical models and dashboards to study the relationships among train size, process constraints, reticle availability, tool capacity, lot-loading patterns, and manufacturing output. Through the analysis of historical manufacturing data, the intern will generate actionable insights and recommendations to improve operational efficiency while maintaining product quality and cycle-time performance. The project provides an opportunity to apply data analytics, statistical modelling, and manufacturing knowledge to a real-world semiconductor production challenge. Objective of the Project Identify the operational factors that influence Photo train size and manufacturing performance. Evaluate the relationship between train size and key performance indicators. Develop data-driven models to assess train size optimization scenarios. Recommend opportunities to improve throughput, utilization, and cycle-time performance. Opportunities for Full Time Employment High-performing interns may be considered for future internship or full-time employment opportunities, subject to business needs, role availability, and the applicable selection process. Project Scope Collect, validate, and consolidate relevant Photo Manufacturing data from approved sources. Analyze historical train size trends across selected products, process flows, and tool groups. Study the relationships between train size and throughput, cycle time, process-on-time performance, tool utilization, and reticle availability. Identify process, capacity, reticle, and lot-loading factors that may limit train size optimization. Develop predictive or simulation models and visualization dashboards to evaluate potential train size improvement scenarios. Learning Opportunities Gain exposure to Photo Manufacturing operations and capacity optimization in semiconductor wafer fabrication. Develop experience in preparing and analyzing large manufacturing datasets. Apply statistical analysis, predictive modelling, and simulation methods to a production challenge. Build data visualization and dashboarding skills using Microsoft Excel, Power BI, Tableau, or JMP. Deliverables Data analysis identifying the key factors that influence Photo train size. A predictive or simulation model for evaluating train size scenarios. A dashboard or visualization presenting train size performance indicators and analytical insights. Recommendations to optimize train size and improve manufacturing throughput. A final presentation summarizing the findings, recommendations, and potential business impact. Impact of the Project Improve understanding of the factors influencing Photo train size. Identify opportunities to improve factory output and tool utilization. Enable data-driven evaluation of train size improvement scenarios. Establish a reusable analytical approach for future Photo Manufacturing optimization studies. Skillsets Required Strong analytical, problem-solving, and critical-thinking

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Intern, Photo Manufacturing Data Analytics and AI at Micron Technology, Fab 10N/X, Singapore | Yoinka