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Scientific Machine Learning Jobs in Orem, UT (NOW HIRING)

Sr. Data Scientist

Lehi, UT · On-site

$80 - $120/hr

The data scientist will interact with teams from Account Management to Application Engineering and ... The focus is on extending machine learning, predictive modeling, and analytic components to provide ...

Senior Data Scientist

Lehi, UT · On-site

$107.90 - $183.40/hr

Senior Data Scientist - Overview nCino's Data & AI team is seeking a Senior Data Scientist to build ... Proficiently create machine learning models tailored to solve business problems. * Work with large ...

Data Science Tutor

Provo, UT · Remote

$18 - $40/hr

What We Look For In a Data Science Tutor * Advanced Subject Mastery ... Deep knowledge of statistical analysis, data wrangling, exploratory data analysis, machine learning ...

What We Look For In a Data Science Tutor * Advanced Subject Mastery ... Deep knowledge of statistical analysis, data wrangling, exploratory data analysis, machine learning ...

Lead Data Scientist

Draper, UT · On-site +1

$144K - $250K/yr

Advanced machine learning modeling and/or technical expertise in developing market differentiation data science products. * Experience in bank card/credit card business, consulting, retail, marketing ...

AI Solutions Architect

Midvale, UT · On-site

$59.50 - $78.25/hr

This role is pivotal in leveraging modern Data and AI technologies to solve business challenges and requires a deep understanding of Data Science, Machine Learning, and Generative AI. The ideal ...

AI Solutions Architect

Midvale, UT · On-site

$59.50 - $78.25/hr

This role is pivotal in leveraging modern Data and AI technologies to solve business challenges and requires a deep understanding of Data Science, Machine Learning, and Generative AI. The ideal ...

Workplace Python coding experience, including a good knowledge of the principal Python Data Science / Machine Learning (ML) library ecosystem. Excellent written and oral communication skills for both ...

Workplace Python coding experience, including a good knowledge of the principal Python Data Science / Machine Learning (ML) library ecosystem. Excellent written and oral communication skills for both ...

Senior ML Engineer

Lehi, UT · On-site

$98K - $134K/yr

Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related quantitative field. * 3+ years of professional experience in Machine Learning Engineering ...

Senior ML Engineer

Lehi, UT · On-site

$98K - $134K/yr

Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related quantitative field. * 3+ years of professional experience in Machine Learning Engineering ...

Senior ML Engineer

Lehi, UT · On-site

$98K - $134K/yr

Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related quantitative field. * 3+ years of professional experience in Machine Learning Engineering ...

The Director, Data Science - Competitive Intelligence, AI Insights & Strategic Analytics is a ... This position combines advanced analytics, machine learning, Generative AI, competitive ...

Data Science Engineer

Lehi, UT · On-site

$107K - $129K/yr

We seek a data scientist to join theCreativity & Productivityfinance team to refine and implement ... Understanding of machine learning techniques, specifically involving supervised learning applied to ...

Showing results 41-60

Scientific Machine Learning information

See Orem, UT salary details

$12

$27

$45

How much do scientific machine learning jobs pay per hour?

As of Sep 6, 2026, the average hourly pay for scientific machine learning in Orem, UT is $27.37, according to ZipRecruiter salary data. Most workers in this role earn between $16.73 and $34.90 per hour, depending on experience, location, and employer.

What is scientific machine learning?

Scientific machine learning (SciML) is an interdisciplinary field that combines principles from machine learning and scientific computing to solve complex scientific and engineering problems. It involves developing algorithms and models that can learn from data and physical laws, such as differential equations, to make predictions, optimize systems, or gain insights into phenomena. SciML is widely used in areas like physics, biology, climate science, and engineering, enabling researchers to accelerate simulations and make data-driven discoveries. The field often leverages both traditional numerical methods and modern machine learning techniques, making it a rapidly evolving area of research.

What are the key skills and qualifications needed to thrive as a scientific machine learning professional, and why are they important?

To thrive as a Scientific Machine Learning professional, you need a strong background in mathematics, statistics, programming (often Python), and domain-specific scientific knowledge, typically with a graduate degree in a STEM field. Proficiency in machine learning frameworks (such as TensorFlow or PyTorch), scientific computing tools (like NumPy, SciPy), and experience with high-performance computing are commonly required. Critical thinking, problem-solving, and collaborative communication are vital soft skills for designing experiments and interpreting complex data. These skills ensure robust, reproducible results and the ability to bridge scientific inquiry with advanced computational methods.

What are some common challenges faced by professionals in scientific machine learning, and how can they be addressed?

Professionals in Scientific Machine Learning often encounter challenges such as integrating domain-specific scientific knowledge with machine learning models, managing large and complex datasets, and ensuring that models are interpretable and physically consistent. Collaboration with domain experts and interdisciplinary teams is essential to bridge knowledge gaps and validate results. To address these challenges, it is helpful to invest time in understanding the underlying scientific principles, keep up-to-date with advancements in both machine learning and scientific fields, and utilize specialized tools and frameworks designed for scientific data.

What is the difference between Scientific Machine Learning vs Data Scientist?

AspectScientific Machine LearningData Scientist
Required credentialsAdvanced degrees in CS, ML, or related fields; knowledge of scientific computingDegree in CS, statistics, or related fields; strong analytical skills
Work environmentResearch labs, academia, industry R&D teamsBusiness analytics, tech companies, consulting firms
Industry usageResearch, scientific computing, engineering simulationsBusiness insights, predictive modeling, data analysis

Scientific Machine Learning focuses on integrating scientific knowledge with machine learning techniques for research and engineering applications. Data Scientists analyze data to extract insights and build predictive models for business or operational purposes. While both roles require strong technical skills, Scientific Machine Learning emphasizes scientific computing and domain-specific modeling, whereas Data Scientists focus on data analysis and visualization.

What are popular job titles related to Scientific Machine Learning jobs in Orem, UT?

For Scientific Machine Learning jobs in Orem, UT, the most frequently searched job titles are:

Sr. Data Scientist

Waystar, Inc

Lehi, UT • On-site

$80 - $120/hr

Other

Medical, Retirement, PTO

Re-posted 21 days ago


Job description

About This Position

We are looking for an experienced Data Scientist who has previously supported Healthcare software applications. The role involves solving technical, data‑driven Healthcare problems using computer science, mathematics, predictive modeling and statistical methods, and knowledge. The data scientist will interact with teams from Account Management to Application Engineering and R&D to conduct detailed analysis and experimentation to maximize the utility of predictive modeling, analytic, and machine learning across Waystar’s product line. The focus is on extending machine learning, predictive modeling, and analytic components to provide up‑to‑date intelligence to Healthcare providers, maximizing outcomes.

What You’ll Do
  • Work closely with Application Engineering, Product Management, and Operational teams in designing, experimenting with, and implementing machine learning and analytical systems applied to design information and user behavior.
  • Collaborate with Application Engineering teams to gather and process data and surface analytically‑based features in core products.
  • Work on groundbreaking new applications of machine learning and analytic technology to Healthcare, producing quantitative, justifiable results to guide feature planning.
  • Translate real‑world Healthcare problems to mathematical frameworks.
  • Partner with Product Management, Marketing, and Sales as needed to promote sales and incorporate market and customer feedback.
  • Engage in data exploration, hypothesis creation (from business and product goals), testing algorithms, scaling to large data‑sets, and validating results.
  • Understand, organize, and communicate root causes of problems and successes succinctly.
What You’ll Need
  • Complete familiarity with statistical and machine‑learning techniques including classification, regression, dimensionality reduction, clustering, and various multivariate methods.
  • Complete familiarity with empirical techniques for estimating machine‑learning model performance, such as hold‑out sets, cross‑validation, and leave‑one‑out testing.
  • Understanding of algorithmic complexity and scaling.
  • Demonstrated competency in R or Python predictive modeling.
  • Demonstrated competency in RDBMS (e.g., SQL Server).
  • Ability to code in one or more general‑purpose programming languages (C#, Java, etc.).
  • Quick‑learner with the ability to multi‑task in a fast‑paced environment.
  • Outstanding presentation and communication skills, able to engage all levels of the business.
  • Strong analytical, problem‑solving, and written communication skills.
  • Proficiency in Microsoft Office applications.
  • Detail‑oriented.
  • Master’s degree or higher in Computer Science, Statistics, or Mathematics is preferred.
  • Aptitude for medical informatics is preferred.
Benefits
  • Competitive total rewards (base salary + bonus, if applicable).
  • Customizable benefits package (three medical plans with Health Savings Account company match).
  • Generous paid time off for non‑exempt team members, starting with three weeks + 13 paid holidays, including two personal floating holidays.
  • Flexible time off for exempt team members + 13 paid holidays.
  • Paid parental leave (including maternity and paternity leave).
  • Education assistance opportunities and free LinkedIn Learning access.
  • Free mental health and family planning programs, including adoption assistance and fertility support.
  • 401(k) program with company match.
  • Pet insurance.
  • Employee resource groups.
Equal Opportunity Statement

Waystar is proud to be an equal‑opportunity workplace. We celebrate, value, and support diversity and inclusion. Qualified applicants will receive consideration for employment without regard to race, color, religion, age, sex, national origin, disability status, genetics, marital status, protected veteran status, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state, or local laws. This applies to all terms and conditions of employment, including recruiting, hiring, placement, promotion, termination, layoff, recall, transfer, leaves of absence, compensation, and training.

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