Intern - Digital Automation & Solutions Team

Micron

Singapore

On-site

SGD 11,000 - 17,000

Full time

4 days ago
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Job summary

Micron Technology, Inc. in Singapore is leading a project to design, develop, and validate a dynamic scheduling model for autonomous mobile robot fleet operations in its Fab 10.

The internship focuses on real-time decision-making to group or release delivery requests, improving fleet utilization and reducing wait times. The role emphasizes optimization, scheduling, and data analytics with exposure to AI-enabled workflows and state-of-the-art solvers.

Qualifications

  • Foundation in optimization, scheduling, routing, or combinatorial optimization.
  • Programming in Python for modelling.
  • Strong analytical and problem-solving skills.
  • Ability to work with data, processes, and constraints.
  • Familiarity with solvers such as Gurobi or Google OR-Tools.
  • Familiarity with AI-enabled workflows, GenAI and related tools.

Responsibilities

  • Study current dispatching and grouping processes.
  • Identify data inputs, constraints, and decision factors.
  • Formulate scheduling and grouping as an optimization model.
  • Develop and test a real-time scheduling algorithm.
  • Compare performance against current dispatch outcomes.
  • Document methodology, results, and recommendations for deployment.

Skills

Optimization
Scheduling
Routing
Combinatorial optimization
Python
Data analysis
Communication
AI-enabled workflows

Education

Pursuing Industrial/Systems/Mechanical/CS/Data Science/OR/Supply Chain Eng

Tools

Gurobi
Google OR-Tools
Python

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 Singapore

Department Digital Automation & Solutions Team

Project Title Dynamic Batch Delivery Scheduling System for Autonomous Mobile Robot Fleet Operations

Project Description Micron’s Fab 10 facility uses a fleet of Autonomous Mobile Robots to complete internal parts-delivery requests across the site. Currently, warehouse technicians determine whether multiple delivery requests should be grouped into a single robot mission or released individually, based on factors such as delivery priority, destination proximity, robot availability, and estimated return timing. This project focuses on developing a dynamic scheduling system that evaluates the full queue of pending delivery requests in real time. The system will determine whether a request should be grouped with other compatible requests, released immediately to the next available robot, or held briefly for a returning robot. The goal is to improve delivery scheduling decisions and reduce overall fleet-wide delivery time through data-driven optimization.

Objective of the Project

The objective of this project is to design, develop, and validate a dynamic scheduling model that improves Autonomous Mobile Robot fleet utilization, reduces delivery waiting time, and enables more consistent decision-making for internal parts delivery.

Opportunities to be Offered for Full Time Employment

Successful completion of the internship may provide the candidate with opportunities to be considered for future full time employment, subject to business needs and individual performance.

Project Scope
  • Study the current manual dispatching and delivery grouping process.
  • Identify relevant data inputs, operational constraints, and decision factors.
  • Formulate the scheduling and delivery grouping problem into an optimization model.
  • Develop and test a real-time scheduling algorithm.
  • Compare algorithm performance against current dispatching outcomes.
  • Document the methodology, results, and recommendations for future implementation.
Learning Opportunities
  • Gain exposure to smart manufacturing and warehouse automation in a semiconductor environment.
  • Apply optimization, scheduling, routing, and data analysis concepts to a real business problem.
  • Learn how Autonomous Mobile Robot fleet operations are planned and evaluated.
  • Develop practical experience in modelling, algorithm development, simulation, and performance benchmarking.
  • Build stakeholder communication skills through project reviews and final presentation.
  • Gain exposure to Artificial Intelligence-enabled workflows, Generative Artificial Intelligence, Code Assist tools, and Large Language Models where relevant to research, analysis, documentation, and solution development.
Deliverable
  • Current-state process and constraint analysis.
  • Optimization model for dynamic delivery scheduling and request grouping.
  • Prototype scheduling algorithm.
  • Performance comparison against current dispatching outcomes.
  • Final report with methodology, findings, results, and recommendations.
  • Final presentation to stakeholders.
Impact of Project

This project is expected to improve the efficiency of Autonomous Mobile Robot fleet operations by enabling more consistent scheduling decisions, reducing delivery waiting time, and improving robot utilization. The project may also provide a foundation for future automation, optimization, and smart manufacturing enhancements within internal logistics operations.

Skillsets Required
  • Foundation in optimization, operations research, scheduling, routing, or combinatorial optimization.
  • Programming knowledge for modelling and analysis, preferably Python.
  • Strong analytical and problem-solving skills.
  • Ability to work with data, process flows, and operational constraints.
  • Good communication and documentation skills.
  • Familiarity with optimization solvers such as Gurobi or Google Operations Research Tools is preferred.
  • Familiarity with simulation, data analytics, Artificial Intelligence-enabled workflows, Generative Artificial Intelligence, Code Assist tools, or Large Language Models is preferred, where relevant to the project.
Course of Interest

The ideal candidate should be pursuing Industrial Engineering, Systems Engineering, Mechanical Engineering, Computer Engineering, Computer Science, Data Science, Operations Research, Supply Chain Engineering, or a related course of study.

Duration of Period The ideal candidate should be able to commit to a internship period of 5 months.

About Micron Technology, Inc.

We are an industry leader in innovative memory and storage solutions transforming how the world uses information to enrich life for 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.

AI alert: Candidates are encouraged to use AI tools to enhance their resume and/or application materials. However, all information provided must be accurate and reflect the candidate's true skills and experiences. Misuse of AI to fabricate or misrepresent qualifications will result in immediate disqualification.

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