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Machine Learning Intern Jobs in Stillwater, MN (NOW HIRING)

Research Intern Pay: Graduate Intern ($20/hr) Undergraduate Intern ($17-$19.25/hr based on ... Develop and implement machine learning algorithms for pattern recognition in digital signals ...

Research Intern Pay: Graduate Intern ($20/hr) Undergraduate Intern ($17-$19.25/hr based on ... Develop and implement machine learning algorithms for pattern recognition in digital signals ...

Intern

Arden Hills, MN · On-site

$15.25 - $20.25/hr

FCA Interns are collegiate volunteers who engage through FCA in a learning and developmental ... Personal Growth - We pour into our intern team with Christ-centered faith and leadership ...

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Machine Learning Intern information

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$26.6K

$44.4K

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How much do machine learning intern jobs pay per year?

As of Jul 8, 2026, the average yearly pay for machine learning intern in Stillwater, MN is $44,423.00, according to ZipRecruiter salary data. Most workers in this role earn between $33,900.00 and $48,000.00 per year, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as a Machine Learning Intern, and why are they important?

To thrive as a Machine Learning Intern, you need a solid understanding of statistics, programming (especially Python), and foundational machine learning concepts, typically supported by coursework or a degree in computer science or a related field. Familiarity with tools such as TensorFlow, PyTorch, scikit-learn, and data analysis libraries, as well as experience with version control systems like Git, is highly valuable. Strong problem-solving skills, curiosity, and effective communication set outstanding candidates apart in this role. These abilities are essential for analyzing data, building models, and collaborating with teams to develop innovative AI solutions.

What does a Machine Learning Intern do?

A Machine Learning Intern assists with developing, testing, and deploying machine learning models under the supervision of experienced data scientists or engineers. Their responsibilities may include data preprocessing, feature engineering, coding algorithms, analyzing results, and assisting with research tasks. Interns often work with programming languages like Python and libraries such as TensorFlow or PyTorch. The internship provides hands-on experience in real-world machine learning projects and helps interns build essential skills for a future career in the field.

What is the difference between Machine Learning Intern vs Data Science Intern?

AspectMachine Learning InternData Science Intern
Required CredentialsTypically pursuing or recent graduate in Computer Science, Data Science, or related fields; knowledge of programming and ML frameworksUsually pursuing or recent graduate in Data Science, Statistics, or related fields; strong analytical and programming skills
Work EnvironmentTech companies, research labs, startups focusing on AI/ML projectsBusiness, finance, healthcare, and tech sectors analyzing data for insights
Employer & Industry UsageUsed in companies developing AI products, research institutions, tech startupsCommon in organizations requiring data analysis, reporting, and decision-making support

While both roles involve working with data and programming, a Machine Learning Intern focuses specifically on developing and implementing machine learning models, whereas a Data Science Intern works more broadly on analyzing data, creating reports, and deriving insights. The roles often overlap, but the Machine Learning Intern role emphasizes algorithm development and model deployment.

What types of projects do Machine Learning Interns typically work on, and how are they supported by the team?

Machine Learning Interns often contribute to real-world projects such as data preprocessing, developing and testing models, or assisting with research for new algorithms. Interns are usually paired with a mentor or work within a small team, receiving guidance during code reviews and regular check-ins. This collaborative environment helps interns gain practical experience, quickly overcome challenges, and integrate feedback, ensuring a steep learning curve and valuable industry exposure.

What Does a Machine Learning Intern Do?

A machine learning intern works in the field of data science. During an internship, you work alongside machine learning engineers who are developing artificial intelligence programs. They do this by writing computer code that allows a software system to run autonomously. Your exact responsibilities depend on the type and level of engineering that the company does. While you likely do not have coding duties, you may help the programmers test or debug their code. You may also work with algorithms and the mathematical aspects of artificial intelligence. A machine learning intern works under the supervision of a lead engineer.

What are popular job titles related to Machine Learning Intern jobs in Stillwater, MN? For Machine Learning Intern jobs in Stillwater, MN, the most frequently searched job titles are:
What job categories do people searching Machine Learning Intern jobs in Stillwater, MN look for? The top searched job categories for Machine Learning Intern jobs in Stillwater, MN are:
What cities near Stillwater, MN are hiring for Machine Learning Intern jobs? Cities near Stillwater, MN with the most Machine Learning Intern job openings:
Minnesota Semiconductor AI Hub: Manufacturing AI Intern

Minnesota Semiconductor AI Hub: Manufacturing AI Intern

University of St Thomas

Saint Paul, MN • On-site

$25/hr

Other

Posted 2 days ago

New


University Of St. Thomas (Minnesota) rating

7.7

Company rating: 7.7 out of 10

Based on 9 frontline employees who took The Breakroom Quiz

223rd of 546 rated colleges and universities


Job description

OVERVIEW
Job Title: Minnesota Semiconductor AI Hub- Manufacturing AI Intern
Location:St. Paul
Pay Rate: $25/per hour
Hours: Up to 20 hours a week.
The Minnesota Semiconductor AI Hub is a collaborative initiative between the University of St. Thomas College of Engineering and local semiconductor manufacturing companies, including Seagate, SkyWater Technology, and Polar Semiconductor. The Hub focuses on developing data-driven and AI-powered solutions to shared manufacturing challenges with the goal of advancing capabilities that benefit the broader Minnesota semiconductor industry.
The Hub is seeking one motivated student intern to help drive rollout of AI inside production and enterprise systems. You will work alongside Hub's industry partner SkyWater and Electrical & Computer Engineering faculty on applied projects with direct relevance to partner company operations. This is a year-long role for rising and recent graduates who are passionate about machine learning, semiconductor manufacturing, industrial digitization, and data-driven problem solving. Candidates will contribute to model development, generative AI augmentation, data pipelines, and evaluation frameworks in an environment at the confluence of traditional manufacturing processing and next-gen digital transformation.
U.S. Person Required:
The MN AI Hub partner SkyWater Technology Foundry, Inc. is subject to the International Traffic in Arms Regulations (ITAR). All accepted applications must be U.S. Persons as defined by ITAR. ITAR defines a U.S. Person as U.S. citizen, U.S. Permanent Resident, Political Asylee, or Refugee.
Expected Work:
The intern will support fab-level AI initiatives focused on improving manufacturing efficiency, engineering knowledge access, and tool uptime. Expected work includes:
- Building and testing machine learning models for tool maintenance prediction, part replacement forecasting, wafer scheduling, and downtime reduction.
- Evaluating generative AI context retrieval strategies to capture BKMs, engineering knowledge, and corporate documentation for use in production and enterprise systems.
- Supporting data pipeline development, feature engineering, model evaluation, and monitoring needed for scalable AI deployment.
- Assessing SME-supported modeling and practices based on data availability, problem complexity, dimensionality, and expected sample requirements.
- You may be required to travel to and work closely with collaborators at the partner site.
Responsibilities:
- Design, develop, test, and deploy machine learning models and agentic systems.
- Work with and create large-scale datasets to train, evaluate, and improve models.
- Analyze model performance and identify opportunities for optimization.
- Establish defect trend monitoring within each fab module to drive improvement in every area of manufacturing.
- Review & respond to fab defect trends using statistical process control principles.
- Stay current with developments in machine learning, deep learning, and AI systems.
- Work with integration & engineering teams to assist in fab digitization work.
- Build and leverage expertise in creative problem solving.
- Organize and present data findings and model results to engineering modules and group leaders, proposing action based on trends and signals.
- Utilize excellent communication skills to deliver information effectively internally and externally, with key stakeholders and sponsors.
QUALIFICATIONS
Required Qualifications:
- Rising MS graduate in Software Engineering, Data Science, Artificial Intelligence, Electrical & Computer Engineering
- Experience working with large datasets, SQL, data pipelines, or cloud-based tools.
- Experience with data structures, algorithms, statistics, and software engineering fundamentals.
- Experience with programming in Python, Java, C++, or a similar language.
- Foundational knowledge of machine learning concepts such as supervised learning, natural language processing, model evaluation, optimization, and neural networks.
- Understanding of generative AI concepts such as retrieval augmented generation, supervised fine-tuning, in-context learning, harness engineering, and multi-agent systems.
- Passion for building responsible, scalable, and user-focused AI systems.
- Strong organization and communication skills to manage tasks to effectively execute and commit deliverables.
- Excellent troubleshooting skills.
- Ability to work collaboratively in a fast-paced technical environment.
- Understanding of semiconductor processing, fab operations, equipment is preferred
- Experience in data engineering is preferred.
- Experience in 3D modelling and NVIDIA Omniverse is a plus.
- Experience in Quantum Programming is a plus.
- Fundamental understanding of analytic techniques is a plus.
SPECIAL INSTRUCTIONS FOR CANDIDATES
On the Application please clearly explain - how you meet the required qualifications.

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