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Data Product Engineer, Data & Analytics

Role overview

Qualifications

  • 5+ years of experience in data engineering, analytics engineering, software engineering, or an adjacent field
  • Deep practical experience with SQL, Python, data modeling, ELT, dbt, orchestration, and cloud data services (preferably GCP)
  • Strong DevOps practices: Git, code review, automated testing, CI/CD
  • Practical experience designing workflows for and directing AI coding agents

Responsibilities

  • Design, build, and improve reliable data pipelines, analytical models, and reusable data products
  • Provide technical leadership and establish standards for architecture, modeling, and lifecycle management
  • Shape and operate a governed semantic layer with consistent metrics across reporting, applications, and AI services
  • Deliver solutions end to end from discovery and requirements through to deployment and operation

Key facts

Hard skills

Other skills

  • Governance
  • Communication
  • Collaboration
  • Problem Solving

About the company

Trimble logo

Trimble

Construction Technology (ConTech)

Trimble is transforming the way the world works by delivering products and services that connect the physical and digital worlds. Core technologies in positioning, modeling, connectivity and data analytics enable customers to improve productivity, quality, safety and sustainability. From purpose built products to enterprise lifecycle solutions, Trimble software, hardware and services are transforming industries such as agriculture, construction, geospatial and transportation. For more information about Trimble (NASDAQ:TRMB), visit: www.trimble.com. Trimble products are used in over 141 countries around the world. Employees in more than 30 countries, coupled with a highly capable network of dealers and distribution partners serve and support customers worldwide. As the market leader in most of our businesses, we offer a compelling value proposition to our customers based on productivity, return on investment and environmental stewardship. Come position yourself with an innovative industry leader and position yourself for success. Career opportunities here: http://fb.trmb.co/jobslkd Follow us on Twitter: https://twitter.com/TrimbleCorpNews Join us on Facebook:www.facebook.com/trimblecorporate See us on YouTube: https://www.youtube.com/channel/UCD5r7hBRwI6NFc4izfm-ocg

Company details

Company typeLarge
IndustryConstruction Technology (ConTech)
Company size10001

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Job description

Drive Innovation as our Next Data Product Engineer - Data & Analytics


Ready to participate in shaping the next evolution of our central Data & Analytics team as we elevate our reporting and data-product foundation for the agentic AI era?


The central Data & Analytics team delivers trusted, governed data products for company-wide reporting through data engineering and analytics practices. In partnership with the Data Platform Team, we power the company’s data backbone and help ensure data supports day-to-day operations and decision-making.

To improve human and agentic AI data consumption, we are enhancing context and metadata management, extending our semantic layer, and strengthening deployment and AI-assisted workflows so these services remain governed, scalable, and resilient.



What Makes This Role Interesting:

This is a hands-on opportunity to shape the team’s future. Working alongside experienced colleagues, you will influence direction and build solutions that turn promising ideas into durable data products, capabilities, and services.



Your Key Responsibilities:

Build & scale data and analytics engineering

  • Design, build, and improve reliable data pipelines, analytical models, and reusable data products for BI, internal applications, and AI consumers.
  • Provide opinionated technical leadership and establish standards for architecture, modeling, orchestration, testing, data contracts, documentation, ownership, access control, and lifecycle management.
  • Shape and operate a governed semantic layer that provides consistent metrics and business concepts across reporting, applications, APIs, and AI-enabled services.
  • Improve operational excellence through data-quality controls, observability, monitoring, alerting, incident practices, performance optimization, CI/CD, and cost management.

Expand AI-native practices & solution delivery

  • Evolve the team’s AI-native practices, including how it defines work for (coding) agents and reviews generated designs, code, tests, and documentation.
  • Make architectural decisions, dependencies, operational knowledge, and business context accessible and reusable by colleagues and AI agents.
  • Deliver solutions end to end—from discovery and requirements through implementation, deployment, operation, and iteration—including internal applications, APIs, automation, and governed agent interfaces such as MCP servers.
  • Improve shared workflows for programmatic dashboard deployment, authentication and authorization, access management, onboarding, and self-service, partnering with platform and security specialists where appropriate.

Apply product judgment & engage stakeholders

  • Anticipate internal customer needs through active listening and research, translating insights into priorities for the team’s product and service roadmap.
  • Apply product judgment to determine which problems to solve, what a good solution looks like, and how to balance user value with security, maintainability, and total cost of ownership.
  • Help users discover and consume data products and semantic models, clearly communicating definitions, ownership, freshness, quality, limitations, and appropriate validation.
  • Define explicit data and service contracts with dependent teams, including ownership, interfaces, service expectations, versioning, and escalation paths.

Mentor & guide the team

  • Mentor colleagues through pairing, technical guidance, and thoughtful reviews across data engineering, analytics engineering, and solution delivery.
  • Help the team consistently apply agreed standards for modeling, testing, code review, deployment, observability, documentation, and governance.
  • Support the adoption of AI-native practices through practical guidance, review approaches, documentation, and reusable templates.
  • Evaluate relevant developments in data, software engineering, and AI tooling, helping the team adopt practices that simplify delivery and improve outcomes.

Your Essential Skills & Experience:

  • 5+ years of experience in data engineering, analytics engineering, software engineering, or an adjacent field.
  • Demonstrate mastery of data engineering and analytics engineering, including data modeling and ELT design, pipeline performance, reliability, and maintainability. Be an opinionated systems thinker.
  • Deep practical experience with SQL, Python, data modelling, ELT, dbt, orchestration, and cloud data services—preferably using GCP (BigQuery), dbt, Airflow.
  • Strong DevOps practices: Git, code review, automated testing, CI/CD, x as code, environment management, observability.
  • Practical experience designing workflows for and directing AI coding agents, and validating generated designs, code, tests, and documentation.
  • Experience building and maintaining production APIs, MCP servers, and endpoints.
  • Ability to communicate technical decisions and trade-offs to technical and non-technical stakeholders.
  • The ideal candidate is a pragmatic, self-directed builder who owns data products end to end and improves the analytics platform through strong data/analytics engineering and product judgment. They treat testing, observability, documentation, and governance as core product work, and they build trusted, resilient, cost-effective systems (pipelines, models, semantic layer, contracts, CI/CD). They are curious, opinionated but evidence-driven, AI-native in delivery (clear PRDs, effective use of coding agents, rigorous review), and a strong cross-functional partner who communicates trade-offs and enables correct data consumption.

What Will Give You a Competitive Edge

  • Experience with BI and analytics governance, including metric consistency, semantic modeling, access control, data quality, discoverability, lifecycle management, and cost.
  • Experience implementing semantic layers, metric stores, data catalogs, or governed analytical interfaces.
  • Experience building internal applications with authentication and role-based access.

About Us: 

Trimble is a global technology company that connects the physical and digital worlds, transforming the ways work gets done. With relentless innovation in precise positioning, modeling and data analytics, Trimble enables essential industries including construction, geospatial and transportation. Whether it's helping customers build and maintain infrastructure, design and construct buildings, optimize global supply chains or map the world, Trimble is at the forefront, driving productivity and progress.


T&L: In the Transportation & Logistics segment, our solutions make it safer, simpler and more efficient to move freight—bringing together a global network of shippers, carriers, brokers and 3PLs.

Why You'll Enjoy Working With Us: 

  • At Trimble, we're not just a company that "does good"—we are a team dedicated to making a tangible, positive Real-World Impact. We build innovative solutions designed to solve the world's most critical challenges. From construction sites to transportation hubs, our work tangibly improves how people live, build, move, and grow.
  • You'll work on projects that truly matter: Our purpose-driven culture means you'll be helping to build and deliver solutions that make work faster, safer, and more sustainable for millions of people worldwide. Our impact is tangible, from connected machines that save fuel to data-driven insights that reduce waste.
  • Collaborate with like-minded people: Our strong internal culture is a "hidden gem." You will work with a collaborative, supportive team that shares your purpose and fosters a genuine sense of belonging. We're a company of "visionary pragmatists" who think boldly and build things that work.
  • Be an owner: Trimble thrives on individuals who take initiative and embrace ownership. You'll find an entrepreneurial spirit where success is often "self-authored," empowering proactive "doers."

Data Product Engineer, Analytics Engineer, Python, SQL, dbt, BigQuery, GCP, Airflow, Agentic AI, Semantic Layer, Transportation and Logistics, Data Product Engineer - Creator, Software Engineer, generalist


How to Apply: Please submit an online application for this position by clicking on the ‘Apply Now’ button located in this posting.

Join a Values-Driven Team: Belong, Grow, Innovate. 

At Trimble, our core values of Belong, Grow, and Innovate aren't just words—they're the foundation of our culture. We foster an environment where you are seen, heard, and valued (Belong); where you have an opportunity to build a career and drive our collective growth (Grow); and where your innovative ideas shape the future (Innovate). We believe in empowering local teams to create impactful strategies, ensuring our global vision resonates with every individual. Become part of a team where your contributions truly matter. 

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