Senior Full-Stack Software Engineer, AI & Data

EverbridgeBengaluru, KarnatakaOn-siteFull-timeSenior, 5–8 yearsListed 48 minutes ago

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About this role

What you’ll do

- Build across the stack. Design and ship internal tools and systems end to end — back-end services and APIs, front-end interfaces, data integrations, and the deployment and infrastructure glue that makes them real.

- Work on many things. Move between projects and problem types as priorities shift — one week a workflow-automation tool, the next an internal dashboard, the next helping ship an AI-powered feature. Breadth is the point.

- Put AI to work. Integrate the LLM, RAG, and agent capabilities the team builds into usable software, partnering closely with the Applied AI Engineer to turn intelligence into product.

- Enable the company. Sit with teams across the business, understand their problems, and build the right solution — measured by how much more effective you make everyone else.

- Ship reliably. Own what you build through to production and beyond, with the quality and judgment to know when good-enough-shipped beats perfect-delayed.

What you'll bring:

- Strong full-stack engineering. You write production-grade code and build comfortably across the stack — back end, APIs, and front end (e.g. Python and/or TypeScript with a modern web framework). You’re not boxed into one layer.

- Range and adaptability. A track record of picking up unfamiliar problems and shipping — you’re energized by variety, not thrown by it.

- Comfort with AI as a tool. You’ve worked extensively with AI — integrating APIs, building features on top of models — even if AI isn’t your specialty.

- A builder who talks to people. You can understand a non-technical team’s problem and turn it into a working solution. Internal enablement rewards engineers who listen as well as they build.

- Data fluency. Enough comfort with pipelines, databases, and structured/unstructured data to work directly with what your software touches.

- Autonomy in a small team. You thrive without heavy process, set your own direction, and are happy wearing whatever hat the moment calls for.

Bonus points

- Experience building internal tools or platforms that other teams depend on.

- Cloud, DevOps, or deployment experience — CI/CD, containers, infrastructure-as-code.

- Hands-on experience shipping LLM-powered features in production.

- A portfolio of varied systems you’ve built end to end.