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Manager Data Analytics Engineer Jobs in Renton, WA

Data Engineer

Seattle, WA

$130K - $156K/yr

... acre is managed with diligence, patience and pride. That's the Weyerhaeuser way. About the Role Weyerhaeuser's Data & Analytics team is looking for a Data Engineer to build and operate the data ...

Data Engineer

Seattle, WA · On-site

$130K - $156K/yr

... acre is managed with diligence, patience and pride. That's the Weyerhaeuser way. About the Role Weyerhaeuser's Data & Analytics team is looking for a Data Engineer to build and operate the data ...

Manager, Data Engineer (Remote)

Home, WA · Remote

$100K - $174K/yr

Job Summary Strategic Analytics at Arch is a growing team at the forefront of the company's AI ... Own end-to-end data engineering delivery across the project lifecycle. * Build strong partnerships ...

Manager, Data Engineer (Remote)

Home, WA · Remote

$100K - $174K/yr

Job Summary Strategic Analytics at Arch is a growing team at the forefront of the company's AI ... Own end-to-end data engineering delivery across the project lifecycle. * Build strong partnerships ...

Senior Analytics Engineer

Seattle, WA · On-site

$112K - $168K/yr

You will make data easy to discover, understand, and trust. Working closely with business analysts, data scientists and engineers, you'll build the analytics foundation that supports reporting ...

This team builds and operates the shared platform that data engineers, analytics engineers, data ... Manage, coach, and develop a team of data platform engineers spanning early-career through senior ...

Contributing to and overseeing the successful delivery of data platform, analytics, and data ... Collaborating with project management to plan work for delivery teams and verifying quality ...

Contributing to and overseeing the successful delivery of data platform, analytics, and data ... Collaborating with project management to plan work for delivery teams and verifying quality ...

Manage a portfolio of 5-8 concurrent projects, prioritizing effectively and driving toward ... Partner with engineering on tag implementation, QA event data for accuracy, and troubleshoot ...

This team builds and operates the shared platform that data engineers, analytics engineers, data ... Manage, coach, and develop a team of data platform engineers spanning early-career through senior ...

Showing results 21-40

Manager Data Analytics Engineer information

See Renton, WA salary details

$50.1K

$145.9K

$199.7K

How much do manager data analytics engineer jobs pay per year?

As of Sep 14, 2026, the average yearly pay for manager data analytics engineer in Renton, WA is $145,908.00, according to ZipRecruiter salary data. Most workers in this role earn between $128,800.00 and $154,700.00 per year, depending on experience, location, and employer.

What is a manager data analytics engineer?

A Manager Data Analytics Engineer is a professional who leads a team of data analytics engineers responsible for designing, building, and maintaining data systems and analytics solutions. They oversee data pipeline development, ensure data quality, and collaborate with stakeholders to translate business requirements into technical solutions. In addition to technical expertise, they manage project timelines, mentor team members, and help drive data-driven decision-making across the organization.

How does a manager data analytics engineer typically balance technical project work with team leadership responsibilities?

As a Manager Data Analytics Engineer, you are expected to split your time between overseeing complex analytics engineering tasks and guiding your team’s development. This involves setting project priorities, conducting code reviews, and ensuring data solutions align with business goals, while also mentoring team members and facilitating collaboration with stakeholders like data scientists and business analysts. Successful managers often establish clear communication channels and delegate tasks effectively, so they can stay hands-on with key projects while supporting the professional growth of their team.

What are the key skills and qualifications needed to thrive as a manager data analytics engineer, and why are they important?

To thrive as a Manager Data Analytics Engineer, you need a strong background in data engineering, analytics, and leadership, typically with a degree in computer science or a related field. Familiarity with tools like SQL, Python, data warehousing platforms (e.g., Snowflake, Redshift), and certifications in cloud technologies or data management are common requirements. Excellent communication, problem-solving, and team management skills set top performers apart in this role. These competencies are essential for driving data strategy, ensuring data quality, and leading analytics teams to deliver actionable business insights.

What is the difference between Manager Data Analytics Engineer vs Data Analytics Engineer?

AspectManager Data Analytics EngineerData Analytics Engineer
Required CredentialsBachelor's or Master's in Data Science, Analytics, or related field; often leadership experienceBachelor's or Master's in Data Science, Analytics, or related field
Work EnvironmentLeads teams, manages projects, collaborates with stakeholdersDevelops data models, analyzes data, implements solutions
Employer & Industry UsageUsed in tech, finance, healthcare, and large enterprisesCommon in similar industries, often within data teams

The main difference is that a Manager Data Analytics Engineer oversees teams and projects, focusing on leadership and strategic planning, while a Data Analytics Engineer primarily develops and implements data solutions. Both roles require strong technical skills, but the manager role adds a layer of team management and stakeholder communication.

What are popular job titles related to Manager Data Analytics Engineer jobs in Renton, WA?

For Manager Data Analytics Engineer jobs in Renton, WA, the most frequently searched job titles are:

What job categories do people searching Manager Data Analytics Engineer jobs in Renton, WA look for?

The top searched job categories for Manager Data Analytics Engineer jobs in Renton, WA are:

What cities near Renton, WA are hiring for Manager Data Analytics Engineer jobs?

Cities near Renton, WA with the most Manager Data Analytics Engineer job openings:

Weyerhaeuser Company
Manufacturing • 5 - 10K employees

$130K - $156K/yr

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Re-posted 23 days ago


Weyerhaeuser rating

7.8

Company rating: 7.8 out of 10

Based on 70 frontline employees who took The Breakroom Quiz


Job description

About Weyerhaeuser

At Weyerhaeuser, we are the world's premier timber, land, and forest products company.  Sustainability is the founding concept of our business and our values drive every decision to ensure we continue to lead the forestry industry in sustainability practices.  And we know about sustainability - we led it in the forestry industry when we planted our first seedling by hand in 1938.  We recognize that our success is dependent on the success of our people.  For over 125 years, our Weyerhaeuser team has been making a difference in the world - from the seedlings we plant, to the forests and trees we nurture, we ensure every acre is managed with diligence, patience and pride.  That's the Weyerhaeuser way.  

About the Role

Weyerhaeuser's Data & Analytics team is looking for a Data Engineer to build and operate the data platform that powers reporting, analytics, and AI across the enterprise. This hands-on role focuses on building scalable, reliable, well-governed pipelines that move data. We invest heavily in template- and metadata-driven patterns, so onboarding a new source is a configuration exercise, not a net-new build.

We expect engineers to use AI as a force multiplier - both in how we build the platform (LLM-assisted development, testing, and documentation) and in what we deliver from it (AI-ready data products grounded in well-modeled sources). This role partners closely with source-system owners, analytics engineers, data scientists, and data analysts. It's well suited for someone who thrives in a fast-paced environment, has strong opinions about data quality and pipeline reliability, and is energized by building scalable foundations rather than one-off integrations.

Responsibilities

Ingestion & Integration

  • Design and maintain ingestion pipelines that move data from SAP, relational databases, flat files, REST APIs, message queues, and SaaS applications into our data lake/Snowflake.

  • Extend our metadata-driven and template-driven ADF pipeline frameworks so onboarding a new source is a configuration exercise - schema mapping, validation, and config, not handwritten pipelines.

  • Develop Python-based Azure Functions for custom ingestion logic, REST API integrations, paging/retry handling, and schema reconciliation.

  • Implement reliable full and incremental data load patterns - watermarking, CDC, late-arriving data, and replayable backfills.

  • Design, develop, and support our geospatial ETL tool data pipelines that ingest, transform, and complex location-based data from enterprise, operational, and third-party sources for analytics and reporting.

Modeling & Transformation

  • Land and preserve history of raw data in the Azure data lake or Snowflake (bronze), then build dbt models that conform, deduplicate, standardize, and enrich it into clean silver datasets.

  • Partner with analytics engineers and data analysts to build dimensional models and semantic views that enable AI-ready datasets.

Orchestration & Reliability

  • Orchestrate end-to-end workflows in Azure Data Factory - dependencies, parameterization, retries, dynamic parallelism, and error handling for complex multi-source pipelines.

  • Build monitoring, alerting, and own incident response - triage, root-cause analysis, and backfills, including occasional off-hours coverage for critical loads.

  • Tune pipelines and Snowflake workloads for performance and cost

Data Quality, Security & Governance

  • Implement data quality rules - schema validation, completeness, freshness, business-rule checks, and anomaly detection - wired into pipelines.

  • Apply security and compliance best practices and contribute to lineage, metadata, and catalog efforts.

Platform & Engineering Practices

  • Partner with Data Platform Engineers on Terraform-managed cloud resources, and CICD pipelines.

  • Drive engineering best practices - version control, testing, documentation, observability, and document pipelines, schemas, contracts, and runbooks so the platform is supportable by the broader team.

  • Mentor junior engineers, contribute to design reviews, and help evaluate new tools and patterns. Contribute to code reviews.

AI Enablement

  • Skilled in the use of AI assistants and LLM-powered tools to accelerate development, generate and improve tests, and produce or maintain documentation.

Collaboration

  • Partner with analytics engineers, data analysts, and data scientists to translate requirements into reliable raw data pipelines they can model into downstream products.

  • Communicate technical concepts and trade-offs clearly to both technical and non-technical audiences.

What You'll Have

Required

  • Bachelor's degree in Computer Science, Information Systems, Engineering or equivalent experience

  • 4 years of hands-on data engineering experience building and operating production data pipelines from internal and external sources

  • Strong proficiency in Python (readable, maintainable) ad SQL.

  • Production experience with a cloud-based ingestion and orchestration platform - Azure Data Factory and Azure Functions preferred, though comparable tools (Fabric Pipelines, AWS Glue/Step Functions, Airflow, Dagster, Prefect, etc.) are acceptable - including parameterized, dynamic, and metadata-driven pipeline patterns.

  • Production experience with dbt or a comparable transformation framework, including building and choosing across materialization patterns (views, tables, incremental, ephemeral, snapshots), test coverage, documentation, and history preservation.

  • Production experience with Snowflake or similar data platform: loading patterns, role-based access, performance tuning, and cost-aware design.

  • Demonstrated experience ingesting from a variety of sources: relational databases, SAP, flat files, REST APIs (JSON/XML), and SaaS applications.

  •  Experience implementing incremental/delta load patterns and managing watermarking, CDC, schema evolution, and backfills.

  • Working knowledge of Terraform for provisioning Azure and/or Snowflake resources.

  • Solid understanding of data quality, monitoring, alerting, and operational support practices.

  • Working proficiency with Git, pull-request workflows, and CI/CD pipelines for data - code review, automated testing, and promotion across environments are part of how you ship.

  • AI in your engineering workflow - demonstrated use of AI assistants and LLM-powered tools to accelerate development, generate and improve tests, and produce or maintain documentation.

  • Track record of owning reliability - not just shipping features, but keeping data flowing cleanly over time.

  • Strong communication skills and the ability to work cross-functionally with engineering, analytics, and business teams.

Preferred

  • Exposure or familiarly working with geo-spatial datasets and using geo-spatial functions

  • Exposure or familiarity with Iceberg table structures and operations

  • Experience designing reusable, config-driven ingestion frameworks at scale.

  • Exposure to streaming or near-real-time ingestion (Event Hubs, Kafka, or similar).

  • Familiarity with data governance, lineage, and catalog tooling.

  • Experience with BI tools such as Power BI in a downstream/consumer context.

  • Experience working with manufacturing, supply chain, or forestry/natural-resources data domains.

Location: This role will be based out of our corporate office in Seattle, WA. 

What We Offer:

Compensation: This role is eligible for our annual merit-increase program, and we are targeting a salary range of $98,811-$148,217 based on your level of skills, qualifications and experience. You will also be eligible for our Annual Incentive Program, which offers a cash bonus targeting 10% of base pay. Potential plan funding may range from zero to two times that target.

Benefits: When you join our team, you and your dependents will be offered coverage under our comprehensive employee benefits plan, which includes medical, dental, vision, short and long-term disability, and life insurance. We offer a pre-tax Health Savings Account option which includes a company contribution. Other benefit options are also available such as voluntary Long-Term Care and Employee Assistance Programs. We also support personal volunteerism, sponsor a host of diversity networks, promote mentoring, and provide training and development opportunities to help you chart your path to a fulfilling career.

Retirement: Employees are able to enroll in our company's 401k plan, which includes a paid company match in addition to our annual contribution equal to 5% of your base salary.

Paid Time Off or Vacation: We provide eligible employees who are scheduled to work 25 hours or more per week with 3-weeks of paid vacation to use during your first year of employment. In addition, after being employed for six months, eligible employees begin to accrue vacation for future use. We also recognize eleven paid holidays per year, providing a total of 88 holiday hours and paid parental leave for all full-time employees.

Weyerhaeuser is an equal opportunity employer. Inclusion is one of our five core values and we strive to maintain a culture where all our people feel a sense of belonging, opportunity and shared purpose. We are committed to recruiting a diverse workforce and supporting an equitable and inclusive environment that inspires people of all backgrounds to join, stay and thrive with our team.


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About Weyerhaeuser

Sourced by ZipRecruiter

Weyerhaeuser is a leading international forest products company based in Seattle, WA, US. Established in 1900, the company has grown to become one of the largest timberland owners in the world. Weyerhaeuser is deeply rooted in the forestry industry and excels in timberland management, as well as the manufacture and distribution of a diverse range of forest products. The product slate encompasses lumber, plywood, wood chips, and other wood-derived materials predominantly used in construction, cellulose fiber production, and bioenergy.

Industry

Manufacturing

Company size

5,001 - 10,000 Employees

Headquarters location

Seattle, WA, US

Year founded

1900

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