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Quantitative Model Validation Analyst Jobs in Oregon

Our uniquely developed factory-direct model lets us offer exceptionally high quality goods for much ... Bachelor's degree in a quantitative discipline (e.g., Economics, Mathematics, Statistics ...

Data/AI Scientist II

OR · On-site +1

$95K - $127K/yr

Build and validate ML and AI models on claims and EHR data for care delivery use cases including ... Show a strong interest in healthcare data structures, quantitative methods, and data science ...

Energy Analyst

Portland, OR · On-site

$80 - $100/hr

Research and model site economics, operating strategies, and enrollment procedures for demand ... Quantitative understanding of energy economics and energy systems * Bachelor's degree required ...

New

Senior Financial Analyst, Retailer

OR · On-site +1

$85K - $106K/yr

... quantitative field, or equivalent practical experience. * Advanced financial modeling skills in ... Proficiency in SQL for self-serve analysis and experience with a BI tool (e.g., Looker or Tableau)

... AI and advanced analytics to materially improve business performance across manufacturing ... Establish business unit standards for AI governance, model validation, monitoring, and auditability.

Financial Analyst

OR · On-site +1

... or quantitative financial analysis roles within a high-growth tech or B2B SaaS environment. * Advanced proficiency in Microsoft Excel / Google Sheets for financial modeling. * Hands-on experience ...

The role will focus on analyzing and defining key revenue drivers, including by channel, geography ... Build & maintain sophisticated quantitative models to improve revenue forecasting/planning.

... modeling, along with Outlook and Word Outstanding organizational, interpersonal, quantitative ... Using AI capabilities, we analyze your application for relevant skills, experiences, and ...

Lead Data Analyst

OR · On-site +1

$160K - $200K/yr

Work closely with analytics engineers on data modeling. You'll shape what gets built in the ... Bachelor's degree in a quantitative or technical field, or equivalent experience. * Hands-on ...

Showing results 41-60

Quantitative Model Validation Analyst information

See Oregon salary details

$59.7K

$141.5K

$253.7K

How much do quantitative model validation analyst jobs pay per year?

As of Aug 21, 2026, the average yearly pay for quantitative model validation analyst in Oregon is $141,547.00, according to ZipRecruiter salary data. Most workers in this role earn between $117,900.00 and $153,800.00 per year, depending on experience, location, and employer.

What is a quantitative model validation analyst?

Quantitative Model Validation Analysts are professionals who assess and validate financial models used by banks and financial institutions. They ensure that these models are accurate, reliable, and comply with regulatory standards. Their work involves testing model assumptions, reviewing model methodologies, and analyzing model outputs to identify potential risks or weaknesses. By providing an independent review, they help organizations maintain the integrity and performance of their risk management and financial forecasting tools.

What are some typical challenges faced by quantitative model validation analysts when assessing complex financial models?

Quantitative Model Validation Analysts often encounter challenges such as interpreting intricate model methodologies, ensuring data integrity, and effectively communicating technical findings to stakeholders who may not have a quantitative background. Additionally, staying current with evolving regulatory requirements and industry standards can be demanding. Collaborating closely with model developers, risk managers, and auditors is crucial to address model limitations and propose actionable improvements, making strong communication and analytical skills essential for success in this role.

What are the key skills and qualifications needed to thrive as a quantitative model validation analyst, and why are they important?

To thrive as a Quantitative Model Validation Analyst, you need a strong background in quantitative finance, statistics, and programming, typically supported by a degree in mathematics, finance, or a related field. Familiarity with statistical software such as Python, R, MATLAB, and model risk management frameworks is essential, and certifications like FRM or CFA are advantageous. Analytical thinking, attention to detail, and effective communication skills set top performers apart by enabling them to explain complex model risks and recommendations clearly. These skills and qualities are vital for ensuring the accuracy, reliability, and regulatory compliance of financial models within an organization.

What is the difference between Quantitative Model Validation Analyst vs Quantitative Risk Analyst?

AspectQuantitative Model Validation AnalystQuantitative Risk Analyst
CredentialsTypically requires a degree in finance, mathematics, or statistics; certifications like CFA or FRM are commonSimilar credentials; often holds CFA, FRM, or related certifications
Work EnvironmentFocuses on validating models used in risk management, trading, or credit scoring within financial institutionsAnalyzes and manages financial risk, including market, credit, and operational risks in banking or investment firms
Industry UsageCommonly employed in banking, asset management, and insurance sectorsWidely used in banking, hedge funds, and financial services

The main difference is that Quantitative Model Validation Analysts focus on testing and validating models to ensure accuracy and compliance, while Quantitative Risk Analysts assess and manage overall financial risks. Both roles require strong quantitative skills and often overlap in credentials and work environments, but their core responsibilities differ in scope and focus.

What are popular job titles related to Quantitative Model Validation Analyst jobs in Oregon?

For Quantitative Model Validation Analyst jobs in Oregon, the most frequently searched job titles are:

What cities in Oregon are hiring for Quantitative Model Validation Analyst jobs?

Cities in Oregon with the most Quantitative Model Validation Analyst job openings:

Staff Data Analyst-Returns

Quince

OR • On-site, Remote

Full-time

Posted 28 days ago


Job description

OUR STORY

Quince was started to challenge the existing idea that nice things should cost a lot. Our mission was simple: create an item of equal or greater quality than the leading luxury brands and sell them at a much lower price.

OUR VALUES

EVERYONE SHOULD BE ABLE TO AFFORD NICE THINGS. Quality shouldn't be a luxury. We're proud of our mission to bring the world's highest quality goods to people at affordable prices.

QUALITY IS MORE THAN MATERIALS. True quality is a combination of premium materials and high production standards.

WE FOCUS ON THE ESSENTIALS. From the perfect crewneck sweater to hotel quality sheets, we're all about high quality essentials that bring enjoyment to daily life.

WE'RE INNOVATING TO MAKE UNREAL PRICES A REALITY. Our uniquely developed factory-direct model lets us offer exceptionally high quality goods for much lower prices than our competitors.

ALWAYS A BETTER DEAL. We believe in real price transparency, for both our customers and factory partners. This way, everyone gets a better deal.

FAIR FACTORIES. We are committed to working with factories that meet the global standards for workplace safety and wage fairness.

OUR TEAM AND SUCCESS

Quince is a retail and technology company co-founded by a team that has extensive experience in retail, technology and building early stage companies. You'll work with a team of world-class talent from Stanford GSB, Wish.com, D.E. Shaw, Stitch Fix, Urban Outfitters, Wayfair, McKinsey, Nike etc.


THE IDEAL CANDIDATE

The ideal candidate is a self-motivated problem-solver who excels at using data and analytics to optimize complex operational processes. They are energized by the opportunity to drive measurable improvements in returns center efficiency, refund accuracy, and product quality. This candidate thrives in a fast-paced, metrics-driven environment where they own end-to-end analytics initiatives-from problem definition and data validation through implementation and impact measurement.

They are comfortable operating at the intersection of operations, finance, and product, translating technical analysis into actionable recommendations for leadership and cross-functional teams. The ideal candidate combines strong analytical rigor with business acumen, understanding how reverse logistics impacts both customer experience and company profitability. They are excited by a culture where transparency, speed, and accountability are core operating principles, and where data-driven insights directly influence strategic and 


RESPONSIBILITIES:

  • Build and maintain dashboards and automated reporting for core KPIs - return rate, days-to-refund, refund accuracy, inventory, and defect rates by return center, carrier, and category; ensure data quality and governance across the team
  • Measure and optimize warehouse productivity - analyze TPH, units/shift, and team performance; conduct workforce analytics to optimize staffing levels, scheduling, and skill allocation; forecast labor demand and identify inefficiencies
  • Diagnose and improve refund accuracy and quality - investigate delayed/incorrect refunds and build preventive monitoring; analyze refurbish metrics (Grade-A rate, bin grades, rework defects); identify process gaps and root causes
  • Identify and drive cost reductions - quantify opportunities across labor efficiency, materials, processing errors, shrinkage, and network optimization; prioritize by impact and support ROI modeling for capital and staffing investments
  • Build predictive models and anomaly detection - flag processing delays, quality drops, and cost spikes in real time; optimize reverse logistics network performance and refund pipeline bottlenecks
  • Partner on system improvements and cross-functional initiatives - collaborate with engineering and operations on data instrumentation; contribute to customer experience and supply chain optimization efforts
  •  

QUALIFICATIONS

  • Bachelor's degree in a quantitative discipline (e.g., Economics, Mathematics, Statistics, Engineering, Physics, Computer Science,Industrial Engineering), Master's preferred
  • 7+ years of relevant experience in data analytics, operations analytics, or supply chain analytics-preferably with exposure to returns, reverse logistics, or warehouse operations
  • Expert-level SQL proficiency; ability to write complex queries, optimize performance, and work with large-scale transactional datasets
  • Proficiency in Python or R for statistical analysis, data modeling, and exploratory analysis
  • Strong analytical skills: ability to define metrics, diagnose root causes, and translate data insights into actionable business recommendations
  • Experience with dashboarding and data visualization tools (Looker, Tableau, Sigma, or similar); familiarity with automation and alerting frameworks
  • Strong proficiency with AI tools to increase productivity, surface insights, and accelerate analysis
  • Excellent written and oral communication; ability to explain complex analyses to both technical and non-technical audiences
  • Proven ability to manage multiple workstreams, prioritize effectively, and deliver in a fast-paced environment
  • Strong ownership mentality: self-directed, proactive, and accountable for end-to-end quality and impact
PREFERRED QUALIFICATIONS
  • Experience in e-commerce, logistics, or marketplace operations
  • Familiarity with reverse logistics, returns management systems, or warehouse workflows
  • Background in process optimization, Six Sigma, or operational excellence
  • Knowledge of inventory management, cost accounting, or P&L analysis