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Operations Research Manager Jobs in Oregon (NOW HIRING)

Managing MLE-heavy engineering and research efforts to optimize our core unsecured personal loan ... operations research, etc). * Technical abilities and attitude * Strong technical judgment and ...

We are a community of researchers, engineers, and operations people dedicated to creating ... Must be highly motivated and able to self-manage deadlines and quality goals. * Preference will be ...

We are a community of researchers, engineers, and operations people dedicated to creating ... Must be highly motivated and able to self-manage deadlines and quality goals. * Preference will be ...

We are a community of researchers, engineers, and operations people dedicated to creating ... Must be highly motivated and able to self-manage deadlines and quality goals. * Preference will be ...

Minimum of eight (8) years of experience supporting clinical research, clinical trial operations, protocol development, regulatory affairs, or research program management. * Demonstrated experience ...

Bachelor's Degree in Operations Research, Industrial Engineering, Engineering Management, Business Analytics, Computer Science, or related fields with a concentration in operations or analytics * 5+ ...

... managing inventory accuracy, supporting system functionality, and researching repair issues. These positions require strong attention to detail, technical proficiency, and collaboration across ...

... managing inventory accuracy, supporting system functionality, and researching repair issues. These positions require strong attention to detail, technical proficiency, and collaboration across ...

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Operations Research Manager information

See Oregon salary details

$40.7K

$99.2K

$159.7K

How much do operations research manager jobs pay per year?

As of Jun 28, 2026, the average yearly pay for operations research manager in Oregon is $99,178.00, according to ZipRecruiter salary data. Most workers in this role earn between $70,300.00 and $122,100.00 per year, depending on experience, location, and employer.

What is the difference between Operations Research Manager vs Data Analyst?

AspectOperations Research ManagerData Analyst
Required CredentialsBachelor's or Master's in Operations Research, Industrial Engineering, or related fields; often certifications in project managementBachelor's or Master's in Statistics, Data Science, or related fields; certifications like Microsoft Excel or Tableau
Work EnvironmentTypically in corporate, manufacturing, or logistics settings; managing teams and projectsIn offices or remote; analyzing data sets and creating reports
Employer & Industry UsageUsed in supply chain, manufacturing, logistics, and consulting firmsCommon across finance, marketing, healthcare, and tech industries

While both roles involve data analysis, Operations Research Managers focus on optimizing complex systems and processes using advanced mathematical models, often leading teams. Data Analysts primarily interpret data to support decision-making through reports and visualizations. The roles overlap in data skills but differ in scope and strategic impact.

How do Operations Research Managers typically collaborate with cross-functional teams within an organization?

Operations Research Managers frequently work closely with teams from departments such as IT, finance, logistics, and production to identify operational challenges and develop data-driven solutions. They lead or participate in project meetings, translate complex analytical findings into actionable recommendations, and ensure that proposed models align with business objectives. Effective communication and the ability to explain technical concepts clearly are essential, as these managers serve as a bridge between analytical experts and decision-makers. This collaborative environment fosters innovation and ensures the successful implementation of optimization strategies.

What are Operations Research Managers?

Operations Research Managers are professionals who oversee teams that use mathematical modeling, data analysis, and optimization techniques to help organizations solve complex problems and make better decisions. They often manage projects that improve efficiency, reduce costs, and enhance overall performance in various industries such as manufacturing, logistics, healthcare, and finance. These managers translate business challenges into analytical models and guide their teams in implementing solutions that support organizational goals.

What are the key skills and qualifications needed to thrive as an Operations Research Manager, and why are they important?

To thrive as an Operations Research Manager, you need advanced analytical skills, a solid grasp of mathematical modeling, and typically a master's or Ph.D. in operations research, mathematics, or a related field. Proficiency in optimization software, statistical analysis tools (such as MATLAB, R, or Python), and experience with data visualization systems is essential. Strong leadership, problem-solving, and communication skills set standout managers apart by enabling them to lead teams and explain complex findings to stakeholders. These capabilities are crucial for making data-driven decisions that optimize organizational efficiency and competitive advantage.
What are the most commonly searched types of Operations Research jobs in Oregon? The most popular types of Operations Research jobs in Oregon are:
What job categories do people searching Operations Research Manager jobs in Oregon look for? The top searched job categories for Operations Research Manager jobs in Oregon are:
Infographic showing various Operations Research Manager job openings in Oregon as of June 2026, with employment types broken down into 85% Full Time, 13% Part Time, and 2% Contract. Highlights an 83% Physical, 2% Hybrid, and 15% Remote job distribution, with an average salary of $99,178 per year, or $47.7 per hour.
Senior Manager, Machine Learning

Senior Manager, Machine Learning

Upstart

OR โ€ข Remote

Other

Posted 22 days ago


Job description

The Teamย 

Our Core ML organization is looking for an exceptional, hands-on Machine Learning Manager to join our leadership group. Because our ML teams share common codebases and modeling pipelines, we are searching for generalist ML leaders who can be deployed to the areas of our business where they will have the most impact.

Rather than hiring for one specific silo, we match candidates to the right team based on their unique background, technical strengths, and interests. Depending on your expertise, you could step in to lead one of several high-priority teams, such as:

  • Cash Line: Leading the 01 ML innovation for our brand new subscription-based line of credit, building core underwriting and customer behavior models (churn, draw, default) in a domain with limited data and long feedback loops.
  • Auto Retail Lending (ARL): Tackling unique, deep-modeling challenges such as competing risk, collateral, and recovery modeling for dealership-based auto lending.
  • Underwriting: Managing MLE-heavy engineering and research efforts to optimize our core unsecured personal loan models.

This is a highly technical player-coach role. You will not be managing a massive organization; instead, you will lead a small, nimble team of individual contributors (Research Scientists, Data Scientists, or Machine Learning Engineers). This role is designed for a builder who wants to retain meaningful strategic scope, maintain a roughly 50/50 split between technical execution and management, and act as the definitive ML owner for their product space.

How you'll make an impact:

  • Act as a Player-Coach: Dive deep into the data and code. You will spend a significant portion of your time making direct technical contributions, reviewing code/PRs, and understanding the mathematical nuances of your team's models.
  • Lead Strategic Initiatives: Take ownership of a specific product area (like Cash Line or Auto) and serve as the de facto ML leader in cross-functional strategy meetings.
  • Drive 01 and Scaling ML Efforts: Depending on your team placement, you may build out entirely new capabilities from scratch or optimize highly mature models dealing with massive scale and shifting macro-economic regimes.
  • Translate Models to Business Impact: Design and refine decision engines that translate model predictions into accurate, transparent, and customer-friendly lending outcomes.

What we're looking for:

  • Minimum Qualifications
    • Experience
      • 6+ years of experience developing and deploying machine learning models in production with direct business impact.
      • Proven track record of leading high-impact ML initiatives from research through productionization.
      • Advanced degree in a quantitative field (e.g., computer science, statistics, economics, operations research, etc).
    • Technical abilities and attitude
      • Strong technical judgment and ability to dive deep into model design, data analysis, and evaluation.ย 
      • Keen statistical, economic and business intuition, and comfort with reasoning under uncertainty and data limitations.
      • Knowledge of production ML, ability to adapt to new tech stacks and get in the weeds of work output from the team.ย 
      • Excited and able to make direct technical contributions when needed.
    • Leadership
      • Exceptional leadership skills with experience developing teams of highly technical ML scientists.
      • Attract, mentor, and grow a top-tier team of ML scientists passionate about expanding access to credit.
      • Proven ability to influence and collaborate cross-functionally with Product, Engineering, Capital Markets and other teams.
      • Strong project management skills with experience scaling processes and operational workflows.
  • Preferred Qualifications
    • PhD in Computer Science, Statistics, Economics or a related field.
    • Proven success building and scaling new ML products from inception.
    • Familiarity with lending, lines of credit, or other consumer finance products.ย 
    • Hands-on familiarity with end-to-end ML infrastructure, including experimentation pipelines, feature stores, and model monitoring. Ability to uplevel team's engineering practices and drive cross-functional engineering design.

Position Location - This role is available in the following locations: US Remote

Time Zone Requirements - This team operates on the East/West Coast time zones.

Travel Requirements - This team has regular on-site collaboration sessions. These occur 3-4 days per quarter at one of our offices. If you need to travel to make these meetups, Upstart will cover all travel related expenses.

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