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Product Data Jobs in Virginia (NOW HIRING)

Director, Product

Richmond, VA · Remote

$230K - $241K/yr

HOW YOU WILL MAKE AN IMPACT Data product strategy & outcomes orientation * Define Kobie's data product portfolio with a clear focus on marketing, loyalty, and customer experience outcomes ...

MDM PIM Manager

Richmond, VA · On-site

$99K - $232K/yr

The Opportunity As part of the Data Management team, you will architect and oversee enterprise-wide Product Information Management (PIM) solutions. As a Manager, you will lead business development ...

Director, Product Operations

Mechanicsville, VA · On-site

$231K - $242K/yr

Data Governance & Quality Control * Develop product data governance policies, standards, and quality metrics. * Establish data stewardship processes and accountability structures. * Monitor and ...

New

Data/Software Engineer

Falls Church, VA · On-site

$122K - $146K/yr

Required : • 5+ years of experience building production data pipelines and scalable ETL solutions. • Advanced Python development experience, including Pandas and NumPy. • Experience developing ...

Data Engineer

Arlington, VA · On-site

$131K - $158K/yr

Develop production-grade data-processing solutions using Python, SQL, PySpark, Apache Spark, and Delta Lake * Design and maintain data models, schemas, tables, and medallion architecture patterns ...

Showing results 21-40

Product Data information

See Virginia salary details

$26.3K

$96.5K

$206.2K

How much do product data jobs pay per year?

As of Aug 7, 2026, the average yearly pay for product data in Virginia is $96,544.00, according to ZipRecruiter salary data. Most workers in this role earn between $70,400.00 and $116,000.00 per year, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as a product data analyst, and why are they important?

To thrive as a Product Data Analyst, you need strong analytical skills, proficiency in statistics, and a background in data science or a related field, often supported by a relevant degree. Familiarity with tools like SQL, Excel, Python or R, and data visualization platforms such as Tableau or Power BI is typically required. Excellent problem-solving ability, attention to detail, and effective communication skills help you translate data into actionable business insights. These skills ensure that product decisions are data-driven, measurable, and aligned with organizational goals.

What is a product data analyst?

A Product Data Analyst is a professional who collects, analyzes, and interprets data related to a company's products. Their main goal is to provide insights that help inform product development, marketing strategies, and business decisions. They work closely with product managers, engineers, and marketing teams to track product performance, identify trends, and recommend improvements. Product Data Analysts often use tools like Excel, SQL, and data visualization platforms to present their findings and support data-driven decision-making.

How does a product data professional typically collaborate with other departments within an organization?

Product Data professionals often work closely with teams such as Product Management, Engineering, Marketing, and Sales. Their role involves gathering, analyzing, and maintaining product information to ensure accuracy and consistency across platforms. They frequently coordinate with engineers to understand technical specifications, assist marketing with product positioning, and support sales by providing detailed product data. Regular cross-functional meetings and clear communication are essential, as collaboration is key to ensuring data quality and supporting business goals.

What is the difference between Product Data vs Product Analyst?

AspectProduct DataProduct Analyst
Primary RoleCollecting, managing, and maintaining product-related dataAnalyzing product data to provide insights and support decision-making
Skills & CertificationsData management, SQL, Excel, database knowledgeData analysis, visualization, business acumen, often SQL and Excel
Work EnvironmentData teams, product teams, IT departmentsProduct teams, marketing, business units
Industry UsageUsed across tech, e-commerce, manufacturing for data managementUsed to inform product strategy, feature development, and market analysis

Product Data focuses on managing and maintaining product-related information, ensuring data accuracy and accessibility. Product Analysts interpret this data to generate insights that influence product decisions. While Product Data roles are more technical and data-focused, Product Analysts combine data skills with business analysis to support strategic initiatives.

What are popular job titles related to Product Data jobs in Virginia? For Product Data jobs in Virginia, the most frequently searched job titles are:
Infographic showing various Product Data job openings in Virginia as of August 2026, with employment types broken down into 1% As Needed, 82% Full Time, 13% Part Time, and 4% Contract. Highlights an 87% Physical, 3% Hybrid, and 10% Remote job distribution, with an average salary of $96,544 per year, or $46.4 per hour.

Director, Product

Kobie Marketing

Richmond, VA • Remote

$230K - $241K/yr

Full-time

Re-posted 24 days ago


Job description

Join a National Top Workplace 
 
Named a Top Workplace in the USA and Top Remote Workplace, Kobie is where the best minds in loyalty come together, driven by passion and innovation. We're always looking for talented individuals who are ready to join a collaborative, growth-focused culture. As a partner to some of the world's most recognized brands, we are leaders in loyalty, helping brands build lasting emotional connections with their consumers. 
 
Join Us from Anywhere 
While our headquarters are nestled in sunny St. Petersburg, Florida, Kobie embraces a flexible work environment, offering teammates the freedom to work remotely. We understand the importance of work-life balance and support our team with: 

         Flexible Time Off to recharge when needed 
         Nine Company-Wide Holidays 
         A diverse suite of benefits prioritizing your growth, development, and personal well-being 

Discover more about our perks and benefits here. 
 
Kobie is a values-led organization where we believe that everyone is a leader, regardless of their position or role. 


ABOUT THE TEAM AND WHAT WE'LL BUILD TOGETHER 

Kobie's Product Management organization is evolving from project execution to a P&L ownership model - where leaders drive revenue, customer satisfaction, and the commercial value of Kobie's data capabilities. This role sits at the center of that transformation.

As Director, Product you will define what Kobie's data platform means as a market-facing product: how behavioral and transactional data becomes the engine behind smarter loyalty programs, better marketing performance, and more personalized customer experiences. You will set strategy for KLICs and the Data Engine, build the commercial model to monetize them, and ensure our data capabilities fuel AI-driven outcomes - not just move data between systems. Success at year one looks like increased attach rates, at least one AI-powered capability live with measurable client outcomes, and clear differentiated positioning of Kobie's data platform in the market.

You will work directly with Product, Data Engineering, Client Services, and Commercial teams to convert Kobie's data assets into scalable, repeatable offerings.

HOW YOU WILL MAKE AN IMPACT

Data product strategy & outcomes orientation
  • Define Kobie's data product portfolio with a clear focus on marketing, loyalty, and customer experience outcomes - establishing product boundaries, value propositions, and positioning for KLICs and the Data Engine that go well beyond data movement or pipeline delivery.
  • Set the standard for what "AI-ready data" means at Kobie - ensuring our behavioral and transactional data is structured, governed, and accessible in ways that support real-time personalization, predictive modeling, and AI-assisted marketing workflows.
  • Drive the long-term roadmap for data capabilities that help clients transform unified customer data into actionable audiences, personalized experiences, and measurable loyalty outcomes.
AI-enabled product evolution
  • Embed practical AI-driven capabilities into existing data products - identifying where AI should assist, accelerate, or automate across the loyalty and marketing analytics lifecycle, in ways that are durable and commercially scalable.
  • Partner with Data Engineering and Data Science to ensure AI and ML outputs - propensity models, segment recommendations, next-best-action signals - are productized as client-facing capabilities with clear value propositions, not internal experiments.
  • Actively use AI in your own product workflow; bring firsthand fluency to decisions about where AI belongs in a product and where it doesn't.
Commercialization, pricing & packaging
  • Own pricing and packaging strategies for data-driven offerings - usage-based, tiered, and outcome-based models; define the unit of value and validate willingness-to-pay with commercial teams.
  • Improve attach rates and revenue contribution of data products by translating platform capabilities into client-facing value narratives that sales and client services can execute against.
  • Own the commercialization framework for new AI-enabled capabilities - from proof-of-concept through pricing validation, GTM readiness, and first client deployment.
Productization of client solutions
  • Partner with Client Services to identify repeatable patterns across bespoke client work and convert them into standardized, scalable product offerings - with a clear framework for what gets productized versus what stays custom.
  • Build structured intake and prioritization for product signals from Client Services, Business Development, and clients - roadmap direction driven by patterns and commercial opportunity, not reactive one-off requests.

WHAT YOU NEED TO BE SUCCESSFUL

Required
  • 8-12+ years of product management experience owning commercial outcomes for data, platform, analytics, or engagement products in technology, martech, or data-driven environments.
  • Demonstrated experience defining and scaling products focused on marketing, loyalty, or customer experience outcomes - not just data infrastructure delivery or database-to-database movement.
  • Actively uses AI in their own product workflow; can articulate where AI should assist, accelerate, or automate - and may have vibe-coded their own solutions.
  • Strong commercial acumen: pricing, packaging, and monetization strategy; hands-on experience with usage-based, tiered, or outcome-based pricing models; has owned the unit-of-value definition for a product.
  • Proven ability to influence across complex, cross-functional environments without always having direct authority - drives a sharp point of view from concept through build and first sale.
  • Analytical mindset with the ability to translate behavioral data, model outputs, and client feedback into strategic product decisions.
Strongly preferred
  • Experience with behavioral data platforms, customer data infrastructure, or CDPs - how event-level data is collected, governed, and activated for personalization and AI use cases.
  • Familiarity with loyalty program data economics - how transactional, behavioral, and engagement signals combine to drive member retention, offer optimization, and lifetime value.
  • Experience integrating AI and ML capabilities - propensity models, recommendation engines, next-best-action - into existing product workflows rather than shipping standalone AI features.
  • Background in or exposure to agentic AI workflows, real-time decisioning, or AI-assisted campaign and offer optimization.
  • Experience in adjacent domains - retail media, fintech data products, adtech, or digital analytics - where data monetization and client-outcome orientation are core to the product model.

This role is not a fit if

  • Your product experience is primarily in data engineering or infrastructure delivery - commercial ownership and client outcome orientation are central to this role.
  • AI is a talking point on your resume rather than something you actively use and build with today.
  • You've managed data platform roadmaps but have never owned pricing, packaging, or attach rate for a product.
  • You're most comfortable working within engineering - this role requires sustained fluency with commercial, client services, and executive audiences.
Who we are  As a trusted partner, Kobie delivers market-leading, end-to-end loyalty solutions designed to enable customer experiences for the world's most successful brands. We do this with a strategy-led technology approach that uncovers the truth behind what drives consumers on an emotional level. We believe that our team's passion and expertise are the driving forces behind our success and are proud to be named a Top Workplaces in the USA, where the best and brightest in loyalty drive our mission of growing enterprise value through loyalty. 
 
A place for all We celebrate and embrace diversity at Kobie! 
Employment at Kobie is based solely on an individual's merit and qualifications, which are directly related to professional competence. We do not discriminate against any teammate or applicant because of race,color, religion, gender, sexual orientation, gender identity/expression, national origin, disability, age, genetic information, veteran status, marital status, pregnancy, or any other characteristic protected by applicable law. 
 
We are fiercely committed to fostering a workplace where teammates can bring their authentic selves to work every day. Our DEI initiatives, including various committees, ensure that principles of equity, diversity, and inclusion are deeply ingrained throughout Kobie. While our leadership team fully supports our policy of nondiscrimination and equal opportunity, it is the responsibility of all teammates to uphold these values. 
 
Ready to join us? If you're ready to make an impact and grow in a supportive, innovative environment, we'd love to hear from you. Apply today and join the best and brightest in loyalty! 
We may use artificial intelligence (AI) tools to support parts of the hiring process, such as reviewing applications, analyzing resumes, or assessing responses and identifying potential inconsistencies or verification signals in application materials based on available information. These tools assist our recruitment team but do not replace human judgment. Final hiring decisions are ultimately made by humans. If you would like more information about how your data is processed, please contact us.
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