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Weekend Data Engineering Jobs in Oregon (NOW HIRING)

Data Solutions Engineer

OR · On-site +1

$114K - $137K/yr

This is not a pure engineering role, and it's not a pure customer-facing role. You'll need both the technical depth to architect and execute solutions across APIs, SQL, data pipelines, and AI tooling ...

Data Engineer, Staff

Newberg, OR · On-site

$120K - $144K/yr

Designs, implements, tests, deploys, and maintains stable, secure, and scalable data engineering solutions and pipelines in support of data and analytics projects, including integrating new sources ...

Data Engineer, Staff

Newberg, OR · On-site

$120K - $144K/yr

Designs, implements, tests, deploys, and maintains stable, secure, and scalable data engineering solutions and pipelines in support of data and analytics projects, including integrating new sources ...

Data Engineer (L5) - Ads

OR · On-site +1

$380K - $610K/yr

  • Medical

  • Life

  • Retirement

  • PTO

About the team Ads Data Engineering team sits at the core of building a data ecosystem that will power Netflix' understanding and decision making about what impact ads have on our business. This team ...

Technical : 5-8 years of experience in Data Engineering with expert proficiency in Python, SQL, and PySpark. * Platform: Demonstrated experience with Army Vantage (Palantir Foundry) and the Advana ...

Engineering Manager - User Data & Consent Management

OR · On-site +1

$436K - $710K/yr

  • Medical

  • Life

  • Retirement

  • PTO

The Team This role is responsible for the User Data & Consent subdomain within Identity Engineering, spanning two teams: Consent Data & Privacy, which owns user consent management end-to-end from ...

Data Engineer - AI

$101K - $132K/yr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

  • PTO

Work with other groups such as Engineering team, DBA, Cloud ops, etc. to troubleshoot and resolve ... Extend your support to after - hours or weekends as needed. * Create and maintain data pipelines as ...

Sr Integration Engineer

Bend, OR · On-site

$120 - $150/hr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

  • PTO

Work on‑call, including evenings, weekends, and holidays. * Stay current with industry trends, best practices, and emerging technologies in data engineering. * Solution Architecture, Governance ...

Distributed Systems Engineer (L4) - Data Platform

OR · On-site +1

$114K - $137K/yr

  • Medical

  • Life

  • Retirement

  • PTO

The Data Platform teams at Netflix enable us to leverage data to bring joy to our members in many ... Solving real business needs at large scale by applying your software engineering and analytical ...

Sr Data Engineer

Beaverton, OR · On-site

$120K - $145K/yr

Work with engineering leads and other teams to ensure quality solutions are implemented, and ... Troubleshoot data issues and perform root cause analysis * Work across teams to resolve operational ...

Sr. Data Engineer

Beaverton, OR · On-site

$120K - $145K/yr

... work in engineering · Implement distributed data processing pipelines using tools and languages prevalent in the big data ecosystem · Build utilities, user defined functions, libraries, and ...

Be Seen First

Sr. Data Engineer

Beaverton, OR · On-site

$70 - $75/hr

Work with engineering leads and other teams to ensure quality solutions are implemented, and ... Troubleshoot data issues and perform root cause analysis * Work across teams to resolve operational ...

Showing results 41-60

Weekend Data Engineering information

What is the difference between Weekend Data Engineering vs Weekend Data Analysis?

AspectWeekend Data EngineeringWeekend Data Analysis
Required SkillsData pipeline development, SQL, Python, cloud platformsData interpretation, visualization, SQL, Excel
Work EnvironmentTechnical teams, data infrastructure projectsBusiness teams, reporting and insights
CertificationsData engineering certifications (e.g., Google Cloud, AWS)Data analysis certifications (e.g., Microsoft, Tableau)

Weekend Data Engineering focuses on building and maintaining data pipelines and infrastructure, requiring technical skills and cloud platform knowledge. In contrast, Weekend Data Analysis emphasizes interpreting data, creating reports, and providing insights, often using visualization tools. Both roles are essential in data-driven organizations but serve different functions during weekend projects or part-time work.

Are weekend data engineers still in demand?

Weekend data engineers are still in demand as companies seek flexible staffing for data pipeline maintenance, troubleshooting, and project work outside regular hours. Skills in cloud platforms, SQL, and data tools like Apache Spark remain valuable, and many organizations require support during weekends to ensure continuous data operations.

Do weekend data engineers need to work on weekends?

Weekend data engineers typically work during regular business hours and do not usually need to work on weekends unless there are urgent data issues or scheduled maintenance. Some roles may require occasional weekend work for system updates or troubleshooting, but it is not a standard expectation for all positions. Flexibility depends on the company's policies and project deadlines.

What are the most commonly searched types of Data Engineering jobs in Oregon?

The most popular types of Data Engineering jobs in Oregon are:

Data Solutions Engineer

Standard Metrics

OR • On-site, Remote

$114K - $137K/yr

Full-time

Posted 22 days ago


Job description

Come Build With Us 

The Data Solutions Engineer sits at the intersection of Customer Experience and Engineering at Standard Metrics. You'll be the dedicated technical owner for customer-facing data workflows, integrations, and AI-driven automation, while working across a book of customers to understand their data problems and build solutions that make Standard Metrics stickier and more impactful in their day-to-day workflows.

This is not a pure engineering role, and it's not a pure customer-facing role. You'll need both the technical depth to architect and execute solutions across APIs, SQL, data pipelines, and AI tooling, as well as the communication skills to work directly with customers to diagnose needs, set expectations, and deliver results. You'll be deeply embedded with our Data Solutions and Customer Success teams, acting as a technical extension of the customer.

This role is a foundational hire for a nascent services function at Standard Metrics. There's no established playbook here - you'll help write it. If you're energized by ambiguity, by the prospect of defining what "technical services" looks like for a product like ours, and by building something that didn't exist before, this is that opportunity.

What You'll Do
  • Partner directly with customers to identify data challenges and design technical solutions - connecting data sources, configuring integrations, automating recurring workflows, and deploying custom reports
  • Deploy and optimize AI-powered tools and workflows for customers; educate customers and internal teams on prompt engineering, LLM capabilities, and best practices for leveraging AI in their data operations
  • Build and extend internal tooling (importers, parsers, and reporting pipelines) to reduce manual burden on the Customer Experience team and improve platform reliability
  • Execute bespoke data operations such as custom SQL reports, bulk data operations, and backend queries for customers with unique data needs
  • Own API schemas, ingestion cadence, error handling, Snowflake data shares, and database connections
  • Identify repeatable patterns across customers and translate them into product requirements, filing tickets and partnering with Engineering to productize solutions
  • Support internal engineering workflows as a secondary function by helping to triage and resolve quality-of-life bugs and enhancements that are too small for core Engineering but directly impact the Customer Experience team and customers
  • Carry a light book of data parsing work alongside your teammates to stay grounded in the team's day-to-day workflows and build supporting solutions
What You'll Bring
  • 3-5+ years of experience in a technical role with a customer-facing component - solutions engineering, data engineering, technical account management, or similar
  • Strong SQL skills and ability to write complex queries, perform ad-hoc data analysis, and work with relational data models
  • Proficiency in Python for scripting, data manipulation, and workflow automation
  • Hands-on experience with REST APIs: designing, consuming, and debugging integrations
  • Genuine curiosity about AI. Experience with prompt engineering, LLM-based workflows, or AI-forward tooling is a strong plus
  • Willingness to travel up to 60% of the time to work on-site with customers
  • Familiarity with modern data infrastructure such as Snowflake, dbt, or similar data warehouse and pipeline tools
  • Strong communication and ability to translate technical concepts clearly for non-technical stakeholders
  • Experience in B2B SaaS, ideally in fintech, venture capital, or private markets
  • High ownership mentality. You identify problems proactively and drive solutions without waiting to be asked
  • Confidence operating in ambiguity. You don't need a fully defined playbook to get started, and you're energized rather than unsettled by the prospect of helping build one
  • Bonus: experience with data integration tools (Zapier, n8n, Make, or similar), exposure to fund accounting and investment data workflows, or experience configuring MCP servers and AI agents
  • Finance and/or Computer Science degree strongly preferred

Standard Metrics logo

About Standard Metrics

Sourced by ZipRecruiter

Standard Metrics, formerly known as Quaestor, is an automated financial collaboration platform that helps investors and founders to move faster together and make better, forward-facing decisions. We're a full-time team of product builders, investors, and optimists, rebuilding investor relations from the ground up. Standard Metrics is backed by 8VC and Spark Capital along with other leading software VCs and angels and is currently a trusted resource for many of the top venture capital firms in the world.

Industry

Internet and it

Company size

11 - 50 Employees

Headquarters location

San Francisco, CA, US

Year founded

2020

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