Machine Learning Intern Jobs in Utah
Machine Learning Intern jobs in Utah are concentrated in the Salt Lake City corridor, Provo, and Lehi's Silicon Slopes, where companies like Adobe, Qualtrics, and the University of Utah actively recruit interns for roles in natural language processing, computer vision, and predictive modeling. The market draws candidates from entry-level students to graduate researchers, with demand running consistently strong across tech, fintech, and health informatics. See the openings below and apply to the ones that match your experience.
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Come be a part of our mission and make a meaningful and positive impact with the industry leading provider of language services for the Deaf and hard-of-hearing!
Full time Benefits
- Paid Vacation Time and Paid Sick Time and Paid Holidays
- 401k 6% match with immediate vesting
- Nationwide Medical Insurance plans and coverage (Medical, Dental/Orthodontia, Vision)
- TeleDoc
- HSA company match
- 3 Medical plan options including a Low Deductible PPO Medical Plan Offering
- Employee Assistance Program
- Engaged Employee Resource Groups
- Outstanding Learning and Career Development Opportunities
Pay Range: Actual pay may vary up or down depending on job-related factors which may include knowledge, skills, experience, and location. In addition, this position may be eligible for incentive compensation.
* Applicants must be legally eligible to work in the United States to be considered. Visa sponsorship is not available for this role *
Job Summary
As a Machine Learning Engineer II, you will lead the productization of AI/ML research pipelines, transforming proof-of-concept models into robust, scalable, and production-grade systems. You will serve as the technical owner of ML pipeline productization efforts, bridging the gap between research and production by collaborating closely with AI scientists and software engineers. Working within Sorenson's AI Lab, you will ensure that our ML systems are performant, reliable, secure, and maintainable at scale.
Essential Duties and Responsibilities
- Own end-to-end productization of ML research pipelines, from proof-of-concept to production-grade systems, ensuring functional parity, reliability, and scalability.
- Design and implement production ML inference pipelines, including preprocessing, model serving, and postprocessing stages, with a focus on low latency and throughput.
- Architect scalable microservice-based or modular ML systems, making deliberate decisions around system design (e.g., monolith vs. microservices, synchronous vs. asynchronous processing).
- Build and maintain APIs and backend services (REST, gRPC, WebSocket) to support real-time and batch ML inference at scale.
- Containerize ML model pipelines using Docker and deploy them on cloud platforms (AWS preferred), leveraging orchestration tools such as Kubernetes or ECS.
- Implement MLOps best practices including CI/CD pipelines, automated testing, model versioning, and reproducible build environments.
- Develop robust monitoring and observability tooling to track system health, model performance, latency, and data drift in production.
- Ensure systems are secure and compliant, including model encryption at rest, TLS/mTLS traffic encryption, PII controls, and network egress restrictions.
- Collaborate with research scientists to understand model requirements, manage dependencies, and coordinate handoffs from research to production.
- Optimize ML model pipelines for inference efficiency using techniques such as quantization, batching, and hardware acceleration (GPU/CPU).
- Lead and mentor junior engineers on the team, driving technical decisions and code quality standards.
- Document system architecture, software design decisions, and operational runbooks to ensure maintainability and knowledge transfer.
- Other duties as assigned.
Supervisory Responsibility
This position has no direct supervisory responsibilities but does serve as a coach and mentor for other positions in the department.
Travel Requirements
Travel Requirements: Less than 25%
Education
Minimum 4 Year / Bachelors Degree Bachelor's Degree in Computer Science, Computer Engineering, Mathematics, or a related field.
Preferred Graduate Degree Master's or PhD in Computer Science, Machine Learning, or a related technical field.
Experience
5 Years of experience in software engineering with a focus on ML systems, MLOps, or production AI pipelines. A Master's degree may be considered equivalent to 2 years of experience. A PhD may be considered equivalent to 3 years of experience.
Knowledge, Skills, and Abilities
- Strong proficiency in Python and experience with ML frameworks such as PyTorch and TensorFlow.
- Demonstrated experience deploying and serving ML models in production environments, including familiarity with model serving runtimes such as Triton Inference Server, TorchServe, vLLM or equivalent.
- Experience containerizing and orchestrating ML workloads using Docker and Kubernetes (or AWS ECS/EKS).
- Hands-on experience with cloud platforms, preferably AWS, including services such as ECS, EKS, S3, ECR, CloudWatch, and Lambda.
- Strong understanding of software engineering principles including modular design, testability, and CI/CD pipeline development (e.g., GitHub Actions).
- Experience building APIs and backend services using REST, gRPC, or WebSocket protocols for real-time or streaming applications.
- Familiarity with MLOps tooling and practices: experiment tracking, model versioning, pipeline orchestration (e.g., MLflow, DVC, Airflow, or equivalent).
- Experience with monitoring and observability tools such as AWS CloudWatch, Datadog, Prometheus, or Dynatrace.
- Understanding of security best practices in ML systems: model encryption at rest, TLS traffic encryption, PII handling, and network access controls.
- Experience with model optimization techniques for inference efficiency, such as quantization, pruning, batching, or ONNX export.
- Ability to write comprehensive unit, integration, and load tests for ML-integrated systems.
- Excellent communication and collaboration skills, with experience working across research and engineering teams.
- Experience working with video, audio, or multimodal ML pipelines is a plus.
- Experience with Infrastructure as Code tools such as Terraform is a plus.
- Professional attitude, team player, good interpersonal communication skills and able to work across company departments.
Company Summary
Our Mission…Harnessing the power of language, we connect diverse people and enrich the human experience.
Our Vision…To provide global language services that expand opportunities, nurture belonging, and empower the world to connect beyond words.
As one of the world’s leading language services providers, Sorenson combines patented technology with human-centric solutions. We strive to increase accessibility and inclusion through communication solutions for all: call captioning and video relay services, over-video and in-person sign language and spoken language interpreting, translation, real-time captioning, and post-production language services. Sorenson’s impact vision and plan extends to enhancing generational wealth and inclusive workplaces for our employees and the communities we serve.
We achieve great things together working “The Sorenson Way” with our employee values: Customer First, Can-Do Attitude, Collective Action, Growth Mindset, Ownership, and Connect Direct.
Equal Employment Opportunity:
Sorenson Communications is an Equal Opportunity, Affirmative Action Employer.
Equal Opportunity Employer/Protected Veterans/Individuals with Disabilities
This employer is required to notify all applicants of their rights pursuant to federal employment laws. For further information, please review the Know Your Rights (https://www.eeoc.gov/poster) notice from the Department of Labor.
See All 17 Machine Learning Intern Jobs in Utah
Find roles in Utah that match your experience and apply in just a few clicks.
Find Machine Learning Intern JobsMachine Learning Intern Jobs by City in Utah
Where Utah roles are concentrated, by current openings.
Machine Learning Intern Job Market in Utah
A snapshot from current Utah openings, updated as new roles post.
Who's Hiring



Top Industries Hiring
- Education
- Technology & Software
What Utah Employers Look For
The qualifications that appear most often in machine learning intern jobs across Utah.
- Enrollment in a bachelor's or master's program in computer science, mathematics, or statistics
- Hands-on experience with Python and core ML libraries such as TensorFlow or PyTorch
- Familiarity with supervised and unsupervised learning methods and model evaluation techniques
- Experience working with large datasets, data cleaning, and feature engineering pipelines
- Exposure to cloud platforms such as AWS, Google Cloud, or Azure for model deployment
- Strong written and verbal communication skills for presenting findings to cross-functional teams
Machine Learning Intern Jobs in Utah: Frequently Asked Questions
How do you become a machine learning intern in Utah?
Machine learning intern roles in Utah do not require a state-issued license or certification. The typical path starts with enrollment in a computer science, data science, or mathematics program at a Utah university such as the University of Utah, Brigham Young University, or Utah State University. Employers look for completed coursework in linear algebra, probability, and algorithms, along with a portfolio of personal or academic projects demonstrating hands-on ML experience.
Which companies hire machine learning interns in Utah?
Utah machine learning intern roles are posted by SilencerCo, Utah State University, and Graco and others right now, based on current listings on Migrate Mate as of July 2026. Utah's Silicon Slopes corridor in Lehi and the Salt Lake City metro are home to a dense cluster of tech and enterprise software companies that run recurring internship programs aligned with university academic calendars.
Which Utah cities have the most machine learning intern jobs?
Ogden, Salt Lake City, and Logan account for the largest share of machine learning intern openings in Utah. Salt Lake City draws the most roles because of its concentration of tech firms, health systems, and the University of Utah research enterprise, while Provo and Lehi benefit from the Silicon Slopes ecosystem anchored by companies like Qualtrics, Adobe, and numerous high-growth startups.
Are there remote machine learning intern jobs in Utah?
Yes, and more than most fields. About 11% of machine learning intern openings tied to Utah are remote or hybrid as of July 2026, reflecting the desk-based and analytical nature of the work. Roles focused on data pipeline work, model training, and research tend to be the most remote-friendly, while positions involving collaboration with hardware teams or proprietary on-site infrastructure are more likely to require in-person attendance.
How can I get hired as a machine learning intern in Utah with little or no experience?
The most realistic entry path is applying directly to structured internship programs at Utah universities and their affiliated research labs, such as the University of Utah's College of Engineering or BYU's Computer Science department, which place students with industry partners across Salt Lake County and Utah County. Candidates without prior internship experience gain an edge by completing a Kaggle competition or publishing a GitHub portfolio. Adjacent roles such as data analyst or research assistant positions at Utah-based companies like Recursion Pharmaceuticals or Entrata can also serve as stepping stones into ML-focused work.
Where can I find and apply to machine learning intern jobs in Utah?
You can find and apply to machine learning intern jobs in Utah on Migrate Mate, which lists current Utah openings in one place. Search for roles that match your experience level and the specialties you want to build, then apply directly to the ones that fit.
See All 17 Machine Learning Intern Jobs in Utah
Find roles in Utah that match your experience and apply in just a few clicks.
Find Machine Learning Intern Jobs