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Remote Data Modeler Jobs in Portland, OR (NOW HIRING)

... models. Apply now and have your resume considered for Senior Data Team Lead opportunities across ... This is a remote/WFH position with all necessary equipment provided. What You'll Do * Lead data ...

... models. Apply now and have your resume considered for Senior Data Team Lead opportunities across ... This is a remote/WFH position with all necessary equipment provided. What You'll Do * Lead data ...

Hybrid (+50% Remote) - Remote 60% / Onsite 40% EXPECTED PAY RANGE: Data Scientist I: $99,608 - $136 ... Develop, train, and deploy ML models for Time-series forecasting and anomaly detection.

Build ML Based Fraud and Risk models to reduce risk related loss and increase pass rate. * Develop ... Fully remote, cameras-on culture with work-from-home equipment reimbursements available to new ...

Lead the design, implementation, and evaluation of descriptive and predictive models. * Champion ... We use national average to determine pay as we are a remote first company. Individual pay is based ...

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Remote Data Modeler information

See Portland, OR salary details

$10

$62

$88

How much do remote data modeler jobs pay per hour?

As of Aug 3, 2026, the average hourly pay for remote data modeler in Portland, OR is $62.27, according to ZipRecruiter salary data. Most workers in this role earn between $55.82 and $72.40 per hour, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive in the Remote Data Modeler position, and why are they important?

A Remote Data Modeler should possess strong skills in data modeling concepts, database design, and a background in computer science or a related field. Expertise in tools such as ER/Studio, SQL, and familiarity with cloud data platforms (e.g., AWS, Azure) and relevant certifications like CDMP are highly valued. Exceptional analytical thinking, communication, and self-management abilities set top performers apart, especially when collaborating with distributed teams. These skills enable the creation of accurate, scalable data models and ensure effective remote collaboration on complex data projects.

What does a typical day look like for a Remote Data Modeler?

A typical day for a Remote Data Modeler involves collaborating with stakeholders to gather data requirements, designing and updating data models, and documenting structures for existing or new systems. You’ll spend significant time working with modeling tools, writing or reviewing database scripts, and participating in virtual meetings to ensure alignment with development teams and business analysts. Regular tasks include data mapping, troubleshooting modeling issues, and updating data dictionaries. The role requires balancing focus time for deep analysis with clear virtual communication to ensure projects progress smoothly.

What is a Remote Data Modeler job?

A Remote Data Modeler is responsible for designing, implementing, and optimizing data models that support business intelligence, analytics, and database management. They work with large datasets, ensuring data is structured efficiently for performance and scalability. This role often involves collaboration with data engineers, analysts, and business stakeholders to define data requirements. Since it's a remote position, strong communication and self-management skills are crucial for success.

What are the most commonly searched types of Data Modeler jobs in Portland, OR? The most popular types of Data Modeler jobs in Portland, OR are:
What are popular job titles related to Remote Data Modeler jobs in Portland, OR? For Remote Data Modeler jobs in Portland, OR, the most frequently searched job titles are:
What job categories do people searching Remote Data Modeler jobs in Portland, OR look for? The top searched job categories for Remote Data Modeler jobs in Portland, OR are:
What cities near Portland, OR are hiring for Remote Data Modeler jobs? Cities near Portland, OR with the most Remote Data Modeler job openings:

Associate Director, Data Engineering (Remote)

Monks

Portland, OR • On-site, Remote

$121K - $145K/yr

Other

Posted 25 days ago


Job description

About the Role

.Monks is a digital-first marketing and advertising services company connecting the dots across content, data & digital media and technology services. Inspired by the connectivity and flexibility of technology APIs, .Monks' single-P&L model offers brands seamless access to a nearly 6,000-strong team of digital talent organized across 57 talent hubs in 33 countries. 

With us, you'll find a diverse group of colleagues with different backgrounds and perspectives. We believe everyone has something of value to offer, and that sustaining a truly diverse, equitable and inclusive workplace begins with fostering an environment where people can be themselves, authentically, every day. We want to build something with the potential to change the heart of our industry, and we'd love to include your unique perspective.

Media Analytics

As .Monks continues to expand our Global Enterprise Analytics capabilities, we are looking for a forward-deployed data engineer to serve as a high-exposure individual contributor embedded directly within our client's business. In this role, your primary responsibility will be building, maintaining, and scaling production-level data pipelines and infrastructure within the client's ecosystem. You will architect robust data engineering solutions and write production-level code to ensure data integrity and scalability. While this is an engineering-first role, you will also work with the Data Science team to assist in their application of statistical modeling and machine learning to help turn raw data into actionable business decisions. This position requires a unique combination of deep technical engineering expertise and the business acumen to drive services development from within the client's business.

Responsibilities:
  • Design, build, and maintain scalable, reliable, and automated data pipelines using SQL, Python, and Databricks to support enterprise analytics.
  • Architect and optimize robust data models and infrastructure to ensure high data quality, integrity, and accessibility across the client's ecosystem.
  • Partner closely with the Data Science team to operationalize their work, deploying statistical and machine learning models into production environments using DataOps best practices.
  • Identify, design, and implement internal process improvements, including automating manual data processes and optimizing data delivery for scalability.
  • Collaborate with cross-functional teams to identify business problems, gather requirements, identify data sources, and provide data-driven solutions.
The Ideal Candidate

You are a Data Engineer who approaches data engineering as a software engineering discipline. You have experience building reliable, scalable, and maintainable data platforms using modern cloud-native technologies and engineering best practices. You are a proactive problem-solver who thrives in ambiguity. You take ownership of the full development lifecycle, are driven to understand the broader environment you work in, and actively identify and solve technical challenges (such as data inconsistencies or pipeline optimizations) without being prompted. You are a strong communicator and effectively kick-start your projects, seeking in-process guidance rather than waiting for project deadlines.

Requirements:

We are looking for someone who is experienced and familiar with the following tools:

  • Strong experience designing and building scalable data pipelines using modern cloud data platforms.
  • Solid understanding of modern data architecture, including ELT, data lakes/lakehouses, data warehouses, and metadata-driven frameworks.
  • Experience applying software engineering best practices to data development, including:
    • Version control (Git)
    • Code reviews and pull request workflows
    • Modular, reusable, and testable code
    • CI/CD pipelines
    • Automated testing (unit, integration, and data quality tests)
    • Infrastructure as Code
  • Proficiency in Python and SQL, with a focus on clean, maintainable, and well-tested code.
  • Experience with orchestration frameworks and workflow automation.
  • Familiarity with data modeling, data governance, lineage, observability, and monitoring.
  • Experience working in Agile teams and collaborating across engineering, analytics, and business stakeholders.
  • Ability to design metadata-driven and configuration-driven solutions instead of hard-coded implementations.
The essentials:
  • A Bachelor's or Master's degree in Computer Science, Statistics, Applied Mathematics, or a related quantitative field (or equivalent practical experience)
  • 5+ years of experience in data engineering, data warehousing, or building data infrastructure for marketing and business applications
  • Hands-on experience working with common ETL tools
  • Expertise across programmatic display, video, native, and ad serving technology, as well as digital advertising reporting, measurement, and attribution tools
  • Adept to agile methodologies and well-versed in applying DataOps methods to the construction of pipelines and delivery
  • Demonstrated ability to effectively operate both independently and in a team environment
  • Experience in the client/consulting workplace and capable of reprioritization based on evolving client needs
  • Added Bonus: You have expertise in designing and deploying AI workflows directly into a client's business environment

At Monks, we believe in fostering an environment where a diversity of perspectives can thrive. We proactively work to design hiring processes that promote equity and inclusion while mitigating bias. We celebrate diversity and are committed to building a team that reflects the communities we serve. We welcome and encourage qualified applicants, from all backgrounds, who are excited to contribute to our mission.  

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