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Data Analyst Project Manager Jobs in Federal Way, WA

... training project focused on protecting sensitive information. In this role, you will review ... Experience with legal document review, litigation support, or managed legal services. * Familiarity ...

... training project focused on protecting sensitive information. In this role, you will review ... Experience with legal document review, litigation support, or managed legal services. * Familiarity ...

... who together manage the lifecycle of returned and damaged products. In WWRR, you will partner ... As a Data Analyst, you will be responsible for analyzing complex operational problems, discovering ...

... who together manage the lifecycle of returned and damaged products. In WWRR, you will partner ... As a Data Analyst, you will be responsible for modeling complex problems, discovering insights and ...

... who together manage the lifecycle of returned and damaged products. In WWRR, you will partner ... As a Data Analyst, you will be responsible for modeling complex problems, discovering insights and ...

Manage all phases of project development and implementation by ensuring business deliverables are ... Analyze problems in terms of process and/or systems functionality; generate data and apply ...

Project Manager

Sumner, WA · On-site

$84K - $100K/yr

Analyze purchasing and inventory data to identify opportunities for cost savings, improved service levels, and process efficiencies. Capital Project Management * Coordinate the administrative ...

Project Manager

Sumner, WA · On-site

$84K - $100K/yr

Analyze purchasing and inventory data to identify opportunities for cost savings, improved service levels, and process efficiencies. Capital Project Management Coordinate the administrative execution ...

You'll help manage claims, maintain accurate records, analyze data, assist class action members, and keep projects organized and on track. If you're tech-savvy, highly detail-oriented, and take pride ...

Perform data entry, validation, and updates across project and engineering systems, ensuring ... Strong organizational skills with the ability to manage multiple projects and competing priorities ...

Perform data entry, validation, and updates across project and engineering systems, ensuring ... Strong organizational skills with the ability to manage multiple projects and competing priorities ...

This role offers the chance to work with innovative technologies and collaborate on transformative projects that shape the future of data management and analytics. Responsibilities - Lead the ...

Energy Analyst, Data Center Portfolio Responsibilities: * Analyze electric tariffs and wholesale ... Experience prioritizing and managing multiple concurrent analytical workstreams to meet project ...

Showing results 41-60

Data Analyst Project Manager information

See Federal Way, WA salary details

$38K

$92.3K

$151.9K

How much do data analyst project manager jobs pay per year?

As of Sep 2, 2026, the average yearly pay for data analyst project manager in Federal Way, WA is $92,287.00, according to ZipRecruiter salary data. Most workers in this role earn between $69,800.00 and $108,300.00 per year, depending on experience, location, and employer.

How do data analyst project managers balance analytical work with project management responsibilities?

Data Analyst Project Managers often split their time between overseeing project timelines and deliverables, and performing or reviewing data analysis tasks. This dual focus means they must prioritize effective communication and delegation, ensuring that project goals are met while maintaining high standards for data quality and insights. Collaboration with data analysts, stakeholders, and other project managers is essential, as they often facilitate meetings, translate technical findings into actionable recommendations, and resolve obstacles that might affect the project's progress. Successfully managing both aspects requires strong organizational skills and the ability to adapt to shifting priorities.

What are the key skills and qualifications needed to thrive as a data analyst project manager?

To thrive as a Data Analyst Project Manager, you need expertise in data analysis, project management methodologies, and a relevant degree such as in statistics, computer science, or business. Familiarity with data visualization tools (e.g., Tableau, Power BI), project management software (e.g., Jira, Asana), and certifications like PMP or CAPM are often required. Strong communication, problem-solving, and leadership skills help you bridge technical teams and stakeholders while managing timelines and expectations. These abilities ensure that data-driven projects are executed efficiently, deliver actionable insights, and meet organizational goals.

What is the difference between Data Analyst Project Manager vs Data Analyst?

AspectData Analyst Project ManagerData Analyst
Primary RoleOversees data projects, manages teams, and ensures project deliveryAnalyzes data, creates reports, and provides insights
Required SkillsProject management, data analysis, communicationData analysis, statistical skills, visualization
CertificationsPM certifications (e.g., PMP), data analysis toolsData analysis certifications (e.g., Microsoft, SAS)
Work EnvironmentProject teams, cross-functional collaborationData-focused teams, analytics departments

The main difference is that a Data Analyst Project Manager combines project management with data analysis skills to lead data initiatives, while a Data Analyst primarily focuses on analyzing data and generating insights. The Project Manager role involves overseeing projects from start to finish, coordinating teams, and ensuring timely delivery, whereas the Data Analyst role centers on data interpretation and reporting.

Can a data analyst be a project manager?

A data analyst can transition into a project management role if they develop skills in leadership, planning, and communication, often supported by certifications like PMP or Agile. While the roles have different core focuses, combining analytical expertise with project management skills can enable a data analyst to effectively lead projects involving data-driven initiatives.

Who earns more, a data analyst or a data analyst project manager?

Data analyst project managers typically earn higher salaries than data analysts due to their additional responsibilities in overseeing projects, managing teams, and strategic planning. Salary differences also depend on experience, industry, and certifications like PMP or advanced analytics skills, with project managers often earning a premium for leadership roles.

What cities near Federal Way, WA are hiring for Data Analyst Project Manager jobs?

Cities near Federal Way, WA with the most Data Analyst Project Manager job openings:

Infographic showing various Data Analyst Project Manager job openings in Federal Way, WA as of August 2026, with employment types broken down into 80% Full Time, 19% Part Time, and 1% Contract. Highlights an 84% Physical, 3% Hybrid, and 13% Remote job distribution, with an average salary of $92,287 per year, or $44.4 per hour.

Senior Data Product Analyst - Data Management Engineer III

Deloitte

Seattle, WA • On-site

$97K - $123K/yr

Full-time

Posted 14 days ago


Deloitte rating

8.2

Company rating: 8.2 out of 10

Based on 93 frontline employees who took The Breakroom Quiz

46th of 152 rated financial services


Job description

Are you an experienced, passionate pioneer in data and technology who wants to work in a collaborative environment? As an experienced Senior Data Product Analyst - Data Management Engineer III, you will have the opportunity to share new ideas and collaborate on projects as a consultant without the extensive demands of travel. If so, consider an opportunity with Deloitte under our Project Delivery Talent Model. Project Delivery Model (PDM) is a talent model tailored specifically for long-term, onsite client service delivery.

Recruiting for this role ends on: September 10th, 2026

Work you'll do / Responsibilities

You will support a Data & Analytics Foundry operating across numerous business product teams in a scaled staff augmentation model, serving as a senior data product and analytics resource across the Media Network analytics framework.

  • Lead the identification, documentation, and prioritization of gaps in existing data products that cause delays, inefficiencies, inconsistent measurement, or limitations for business users.
  • Translate identified gaps into a centralized intake process, prioritized backlog, delivery roadmap, and actionable resolution plans.
  • Partner across pods, business product teams, domain data leaders, product managers, engineers, analysts, data scientists, and business stakeholders to align priorities, dependencies, and delivery timelines.
  • Coordinate shared resources and cross-functional contributors to address data product issues efficiently and effectively.
  • Act as a senior cross-pod connector to drive representation, alignment, decision-making, and consensus across product, data, engineering, analytics, and business teams.
  • Elevate point solutions into scalable, reusable, governed, and discoverable data products that improve measurement consistency and reduce duplication.
  • Define and maintain data product requirements, user needs, product objectives, success metrics, adoption KPIs, acceptance criteria, and operational performance indicators.
  • Conduct product experiments, stakeholder interviews, user research, and feedback analysis to better understand data consumption patterns, user needs, and feature requirements.
  • Prioritize enhancements and product features based on business value, user demand, feasibility, dependencies, risk, and expected impact.
  • Document and maintain data product roadmaps, release plans, product requirements, operational support requirements, and product documentation.
  • Analyze and measure product performance, data usability, data quality, adoption, discoverability, accessibility, and business value to inform product decisions.
  • Partner with engineering, QA, analytics, and business stakeholders to deliver iterative improvements and validate product readiness.
  • Apply advanced SQL to query, analyze, profile, and validate data; investigate data issues; and assess data product quality and performance.
  • Use Python, as appropriate, to support data analysis, automation, validation, data quality checks, and product insights.
  • Apply knowledge of data modeling, BI, semantic layers, and metrics layers to support effective data product design and analytics enablement.
  • Support the design and adoption of reusable data products, governed data services, semantic layers, metrics layers, data models, and structured data services.
  • Support governance, metadata, cataloging, lineage, access control, privacy, security, and documentation standards to improve transparency, usability, and trust in data products.
  • Define and maintain common business definitions, data elements, metrics, ownership models, and quality expectations across business product teams.
  • Support the delivery of trusted data products for BI reporting, dashboards, advanced analytics, machine learning, generative AI, and other data-driven use cases.
  • Collaborate with data engineering teams using modern data engineering patterns and orchestration technologies such as Spark, Airflow, dbt, or equivalent tools.
  • Lead backlog refinement, sprint planning, prioritization, dependency management, release coordination, and delivery tracking for assigned data product workstreams.
  • Coordinate work across onshore and offshore delivery teams, including shared resources supporting the Data & Analytics Foundry operating model.
  • Prepare product roadmaps, requirements documentation, process flows, status reports, demonstrations, executive briefings, and stakeholder-ready narratives.
  • Translate complex data architecture, data engineering, analytics, and AI concepts into clear business requirements, product strategies, and implementation priorities.
  • Build consensus across stakeholders when data definitions, product priorities, implementation approaches, or delivery timelines differ.
  • Provide clear guidance to others.
  • Mentor analysts and other delivery professionals on data product management, data analysis, data quality, governance, and stakeholder engagement.
  • Communicate regularly with Engagement Managers, project team members, and representatives from various functional and / or technical teams, including escalating any matters that require additional attention and consideration from engagement management.
  • Independently and collaboratively lead client engagement workstreams focused on improving analytics capabilities, resolving delivery bottlenecks, and driving operational outcomes.
  • Meticulous attention to detail and quality of work product.
  • Ability to build and sustain professional relationships.
  • Ability to manage and prioritize multiple tasks in a fast-paced and dynamic environment.
  • Strong interpersonal skills and professional demeanor.
  • Ability to meet deadlines.

The Team

AI & Data - AI & Engineering leverages cutting-edge engineering capabilities to build, deploy, and operate integrated solutions across software, data, AI, networks, and cloud infrastructure. These solutions are powered by engineering for business advantage, helping transform mission-critical operations. Our teams enable clients to modernize technology and data platforms while delivering scalable, high-value outcomes tailored to their business needs.

Qualifications

Required

  • Bachelor's degree in computer science, Engineering, Data Science, Information Systems, Analytics, or a related field, or equivalent practical experience.
  • 6+ years of experience across data product management, data product analysis, data engineering, analytics engineering, BI/reporting, data science, data governance, or related technical roles.
  • 3+ years of experience supporting data product, AI/ML, generative AI, advanced analytics, or data-driven transformation initiatives.
  • 6+ years of experience working with data products, data analysis, data engineering, analytics, or related data and technology capabilities.
  • Advanced proficiency in SQL, including complex joins, common table expressions, window functions, data profiling, data validation, and analytical query development.
  • Experience with data engineering patterns and at least 1 processing, transformation, or orchestration technology such as Spark, Airflow, dbt, or equivalent.
  • Demonstrated experience building, managing, or delivering enterprise data products, semantic layers, metrics layers, data models, governed APIs, or reusable structured data services.
  • Working knowledge of data governance, metadata management, data cataloging, data lineage, data quality, access control, privacy, security, and compliance practices.
  • Experience gathering, analyzing, and documenting business, technical, and data product requirements.
  • Experience defining product success metrics, user adoption KPIs, acceptance criteria, operational indicators, and measurable business outcomes.
  • Experience evaluating data usability, quality, discoverability, accessibility, timeliness, and business value.
  • Limited immigration sponsorship may be available.
  • Ability to travel up to 10%, on average, based on project and client needs.
The wage range for this role takes into account the wide range of factors that are considered in making compensation decisions including but not limited to skill sets; experience and training; licensure and certifications; and other business and organizational needs. The disclosed range estimate has not been adjusted for the applicable geographic differential associated with the location at which the position may be filled. At Deloitte, it is not typical for an individual to be hired at or near the top of the range for their role and compensation decisions are dependent on the facts and circumstances of each case. A reasonable estimate of the current range is $107,900.00 to $179,900.00. 

Preferred

  • Experience using Python for data analysis, automation, data validation, data quality, or data engineering use cases.
  • Experience with BI and reporting platforms, enterprise dashboards, governed metrics, or self-service analytics.
  • Working knowledge of knowledge graphs, graph-based data models, entity resolution, or relationship-oriented data products.
  • Experience with cloud data platforms and modern data ecosystems, such as Snowflake, Databricks, Microsoft Azure, AWS, or Google Cloud.
  • Experience with data catalog, governance, metadata, or data quality platforms such as Collibra, Alation, Informatica, Microsoft Purview, or equivalent tools.
  • Experience supporting AI/ML or generative AI solutions through trusted datasets, governed data products, reusable features, or responsible data practices.
  • Experience working in cross-functional product, analytics, engineering, and QA environments.
  • Experience conducting product experiments, user research, stakeholder interviews, or market research.
  • Experience maintaining data product roadmaps, release plans, product backlogs, and operational support models.
  • Agile delivery experience, including backlog management, sprint planning, release planning, and dependency tracking.
  • Experience working in a staff augmentation, delivery center, shared services, or product-aligned operating model.
  • Ability to manage multiple priorities and stakeholders with minimal supervision.

Benefits

At Deloitte, we know that great people make a great organization. We value our people and offer employees a broad range of benefits. Learn more about what working at Deloitte can mean for you.

Recruiting tips
From developing a stand out resume to putting your best foot forward in the interview, we want you to feel prepared and confident as you explore opportunities at Deloitte. Check out recruiting tips from Deloitte recruiters.

Our people and culture
Our inclusive culture empowers our people to be who they are, contribute their unique perspectives, and make a difference individually and collectively. It enables us to leverage different ideas and perspectives, and bring more creativity and innovation to help solve our clients' most complex challenges. This makes Deloitte one of the most rewarding places to work. 

Our purpose

Deloitte's purpose is to make an impact that matters for our people, clients, and communities. At Deloitte, purpose is synonymous with how we work every day. It defines who we are. Our purpose comes through in our work with clients that enables impact and value in their organizations, as well as through our own investments, commitments, and actions across areas that help drive positive outcomes for our communities. Learn more.

Professional development
From entry-level employees to senior leaders, we believe there's always room to learn. We offer opportunities to build new skills, take on leadership opportunities and connect and grow through mentorship. From on-the-job learning experiences to formal development programs, our professionals have a variety of opportunities to continue to grow throughout their career.

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Qualifications:

Are you an experienced, passionate pioneer in data and technology who wants to work in a collaborative environment? As an experienced Senior Data Product Analyst - Data Management Engineer III, you will have the opportunity to share new ideas and collaborate on projects as a consultant without the extensive demands of travel. If so, consider an opportunity with Deloitte under our Project Delivery Talent Model. Project Delivery Model (PDM) is a talent model tailored specifically for long-term, onsite client service delivery.

Recruiting for this role ends on: September 10th, 2026

Work you'll do / Responsibilities

You will support a Data & Analytics Foundry operating across numerous business product teams in a scaled staff augmentation model, serving as a senior data product and analytics resource across the Media Network analytics framework.

  • Lead the identification, documentation, and prioritization of gaps in existing data products that cause delays, inefficiencies, inconsistent measurement, or limitations for business users.
  • Translate identified gaps into a centralized intake process, prioritized backlog, delivery roadmap, and actionable resolution plans.
  • Partner across pods, business product teams, domain data leaders, product managers, engineers, analysts, data scientists, and business stakeholders to align priorities, dependencies, and delivery timelines.
  • Coordinate shared resources and cross-functional contributors to address data product issues efficiently and effectively.
  • Act as a senior cross-pod connector to drive representation, alignment, decision-making, and consensus across product, data, engineering, analytics, and business teams.
  • Elevate point solutions into scalable, reusable, governed, and discoverable data products that improve measurement consistency and reduce duplication.

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