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Staff R&D Software Engineer, Fivetran AI

Job in Austin, Travis County, Texas, 78701, USA
Listing for: dbt Labs
Full Time position
Listed on 2026-08-05
Job specializations:
  • Software Development
    Cloud Engineer - Software, AI Engineer (Applied/Software), Backend Developer, Software Engineer
Job Description & How to Apply Below

Staff R&D Software Engineer

Fivetran and dbt are building the open data infrastructure that powers AI agents you can trust.

Fivetran is looking for a Staff R&D Software Engineer to join our fast-growing Fivetran AI team. Your data stack was built for humans — but agents are the new primary data consumers, and they have fundamentally different requirements. Agents can't intuit context; it must be explicitly codified, governed, and traceable. We're building the governed context layer that solves this problem:
Agents Schema, an open standard for storing agent-ready context directly in the customer's own data warehouse, and Context Builder, the managed service that keeps it filled and fresh.

This role goes well beyond standard engineering. You'll research emerging techniques in the fast-moving AI landscape and bring real product and market understanding to decide which ideas are worth pursuing — and then you'll take what you've learned and ship it as production software. We're looking for a true generalist who is willing and able to wear whatever hat the moment calls for: prototyping a new retrieval technique one week, hardening a backend service the next, then doing SRE or QA work when the team needs it.

At this level, you're expected to be a trusted expert beyond your own team — defining technical direction that other teams build on, taking high-level direction and turning it into concrete plans with a high degree of independence, and using sound judgment to decide what deserves your attention. Fivetran AI operates like a startup within Fivetran, and we need engineers who thrive on that range and ambiguity rather than staying in one lane.

Fivetran is the epitome of data-driven development — our engineering team is focused on building a world class product that:

  • Builds Infrastructure Agents Can Trust — join our mission to deliver the governed context layer that AI agents depend on: accurate semantic definitions, traceable lineage, data contracts, and auditable history baked in from the start.
  • Embraces Open Standards — help build portable, interoperable data infrastructure:
    Agents Schema, open formats (Iceberg, Delta Lake), MCP-native interfaces, and connector skills that work with any model and any compute.
  • Scales Without Breaking — work to make Fivetran AI efficient at agent scale, where unit costs deflate as volume grows and context retrieval is fast, accurate, and cost-controlled.

We emphasize using no-nonsense tools and take great pride in the simplicity and effectiveness of the systems we build. Our back-end is built on Java, Python, Postgres, and Kubernetes, and our front-end is built on React and Type Script.

This is a full-time hybrid position based out of our Austin, TX office. Our hybrid work model offers a blend of remote flexibility and in-person collaboration, including two days in the office each week to connect and build as a team.

Technologies You'll Use

Python, Java, SQL, dbt, LLMs (Claude, ChatGPT, Gemini), vector databases, Big Query / Snowflake / Databricks, MCP protocol, React, Type Script, Kubernetes

What You'll Do

  • Research emerging techniques in retrieval, reasoning, and agentic AI, and decide what's actually worth pursuing for Fivetran AI's roadmap — then convince others
  • Prototype new ideas quickly, then take the ones that prove out and turn them into shipped, production-grade features
  • Define technical direction that spans multiple teams within Fivetran AI, ensuring architecture decisions made in one area don't create problems in another
  • Build and maintain both back-end and front-end systems for the Fivetran AI product — from Agents Schema pipelines to the Context Catalog UI
  • Drive the AISQL capability forward: natural language to SQL grounded in dbt metric definitions, executed natively against the warehouse
  • Take ownership of production reliability across the platform: on-call rotation, incident response, and SRE work to keep the system trustworthy at scale
  • Set the bar for testing and QA practices, and do hands-on QA work yourself when it matters most
  • Use coding agents to automate the repetitive parts of the job, freeing up time for the research and design work that needs a human
  • Take…
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