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Data Engineer, Marketing Tech BI, Stores Finance Analytics & Insights

Amazon.com Inc
  • Seattle, WA
    11 days ago

    Job Description

    Mkt Tech BI team owns one of the largest datasets at Amazon, our team has various backgrounds that provide you the opportunity to learn each other. Our ultimate goal is to build a robust/scalable data infrastructure and automated reporting system to empower users have maximum flexibility to play with the data in order to maximize Long Term Free Cash Flow(LTFCF).

    The ideal candidate relishes working with large volumes of data, enjoys the challenge of highly complex technical contexts, and, above all else, is passionate about data and analytics. They are an expert with data modeling, ETL design and business intelligence tools and passionately partners with the business to identify strategic opportunities where improvements in data infrastructure creates out-sized business impact. He/she is a self-starter, comfortable with ambiguity, able to think big (while paying careful attention to detail), and enjoys working in a fast-paced and global team. It"s a big ask, and we"re excited to talk to those up to the challenge!

    Key job responsibilities

    • Own the design, development, testing, deployment, and operation of data pipelines and datasets within an assigned domain
    • Build and maintain scalable ETL/ELT workflows using SQL, Python, AWS services, and big data technologies
    • Operate and improve data infrastructure, including Redshift clusters, data lake tables, orchestration workflows, monitoring, alerting, and data quality controls
    • Improve operational reliability by identifying recurring failures, reducing manual intervention, automating recovery steps, and creating clear runbooks
    • Partner with Data Science, Business Intelligence, Product, Finance, Engineering, Privacy, and Legal stakeholders to translate business and compliance requirements into scalable data solutions
    • Build and operate conversational, self-service, and agentic analytics data products
    • Contribute to data foundations that support forecasting, experimentation, ML/AI use cases, self-service analytics, and certified business metrics
    • Implement data validation, lineage, documentation, and operational mechanisms that improve trust and reduce single points of failure
    • Drive scoped modernization efforts such as pipeline simplification, migration support, Redshift/data lake improvements, automation, and self-service data enablement
    • Clarify ambiguous requirements, identify data quality or source-of-truth gaps, and escalate broader trade-offs to senior engineers or managers when appropriate
    • Mentor junior engineers on scoped technical tasks, coding standards, operational practices, and data quality expectations
    • Participate in on-call and product support for business-critical pipelines and datasets
    • Own the design and operation of the data foundations that power GenAI, RAG, and agentic analytics within an assigned domain
    • Build guardrails, validation, and evaluation mechanisms, both automated and human-in-the-loop, that keep AI-generated outputs such as SQL and metrics accurate and reliable
    • Apply AI coding assistants and agentic development tools to your daily work and share effective patterns with the team to raise overall engineering velocity.

    Numbers & Facts

    LocationSeattle, WA
    IndustryRetail
    Company Size10,000 employees or more
    Year Founded1994
    Websitehttp://Amazon.com/militaryroles

    About Company

    At Amazon, we don’t wait for the next big idea to present itself. We envision the shape of impossible things and then we boldly make them reality. So far, this mindset has helped us achieve some incredible things. Let’s build new systems, challenge the status quo, and design the world we want to live in. We believe the work you do here will be the best work of your life.

    Wherever you are in your career exploration, Amazon likely has an opportunity for you. Our research scientists and engineers shape the future of natural language understanding with Alexa. Fulfillment center associates around the globe send customer orders from our warehouses to doorsteps. Product managers set feature requirements, strategy, and marketing messages for brand new customer experiences. And as we grow, we’ll add jobs that haven’t been invented yet.

    It’s Always Day 1
    At Amazon, it’s always “Day 1.” Now, what does this mean and why does it matter? It means that our approach remains the same as it was on Amazon’s very first day – to make smart, fast decisions, stay nimble, invent, and stay focused on delighting our customers. In our 2016 shareholder letter, Amazon CEO Jeff Bezos shared his thoughts on how to keep up a Day 1 company mindset. “Staying in Day 1 requires you to experiment patiently, accept failures, plant seeds, protect saplings, and double down when you see customer delight,” he wrote. “A customer-obsessed culture best creates the conditions where all of that can happen.” You can read the full letter here

    Our Leadership Principles
    Our Leadership Principles help us keep a Day 1 mentality. They aren’t just a pretty inspirational wall hanging. Amazonians use them, every day, whether they’re discussing ideas for new projects, deciding on the best solution for a customer’s problem, or interviewing candidates. To read through our Leadership Principles from Customer Obsession to Bias for Action, visit https://www.amazon.jobs/principles

    Skills

    • Amazon Web Services (AWS)unmatched
    • Artificial Intelligence (AI)unmatched
    • Automationunmatched
    • Big Dataunmatched
    • Business Intelligenceunmatched
    • Business Intelligence Softwareunmatched
    • Business Operationsunmatched
    • Business Strategyunmatched
    • Business Supportunmatched
    • Coding Standardsunmatched
    • Data Analysisunmatched
    • Data Clusteringunmatched
    • Data Lakeunmatched
    • Data Managementunmatched
    • Data Modelingunmatched
    • Data Qualityunmatched
    • Data Scienceunmatched
    • Data Setsunmatched
    • Database Extract Transform and Load (ETL)unmatched
    • Detail Orientedunmatched
    • Documentationunmatched
    • Financeunmatched
    • Financial Analysisunmatched
    • Forecastingunmatched
    • Legalunmatched
    • Mentoringunmatched
    • Metricsunmatched
    • On Callunmatched
    • Operational Improvementunmatched
    • Product Supportunmatched
    • Programming Toolsunmatched
    • Python Programming/Scripting Languageunmatched
    • Regulatory Complianceunmatched
    • Reliability Engineeringunmatched
    • SQL (Structured Query Language)unmatched
    • Scalable System Developmentunmatched
    • Technical Marketingunmatched
    • Test Plan/Scheduleunmatched
    • Use Casesunmatched

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