Senior Full Stack Backend Engineer

Berry Ai β€” United States Β· Posted ~2 hours ago

Senior Full-time

Skills

Full-stack development Backend engineering Cloud architecture Data pipelines Python APIs CI/CD Infrastructure automation dbt Ansible

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Summary ✨ AI‑Generated

A growing technology company is hiring a senior engineer to build end-to-end products across cloud and edge environments. The role combines backend systems, data engineering, APIs, automation, and operational excellence.

Highlights

Work on large-scale systems, AI-enabled products, data platforms, and reliable infrastructure with significant ownership over engineering solutions.

Description

Berry AI builds AI-powered operations platforms for QSR restaurants β€” drive-thru analytics, loss prevention, and store management tooling deployed across thousands of locations across the US β€” and growing. We're hiring a Senior Full-Stack Engineer who ships product features fast and brings the operational discipline to run them reliably. What you'll work on Ship product features end-to-end across our hybrid cloud-edge architecture β€” from edge services through cloud APIs to the daily analytics restaurant operators rely on. Build out our data platform β€” data ingestion pipelines from thousands of stores, dbt models, and the warehouse powering our dashboards. Collaborate with our AI engineers to turn their models into product features β€” clean APIs, intuitive UIs, and the insights they unlock. Contribute to the operational backbone β€” Ansible playbooks, CI/CD pipelines, and observability β€” that lets us deploy, monitor, and operate the fleet. Strengthen our on-call practice β€” leading postmortems, sharpening alerting and runbooks, and turning incidents into durable fixes. You're a strong fit if you have 5+ years shipping production web applications, with deep experience in TypeScript (React/Vue/Angular) and Python (FastAPI/Django/Flask). A track record of owning features end-to-end β€” schema design, API contracts, frontend state, deployment, and post-launch iteration. Strong cloud and system-design fundamentals β€” designing for AWS/GCP at scale (compute, storage, autoscaling), clean REST/GraphQL contracts, and async/event-driven pipelines. Deep SQL and data-modeling experience β€” PostgreSQL at scale, dimensional modeling for analytics, and dbt or equivalent transformation tooling. Disciplined practice of DevOps and SRE β€” metrics (Prometheus, vmagent, Grafana), structured logging, tracing, runbooks. Bonus points Experience managing fleets of on-prem/edge devices. Experience with real-time/streaming systems (RTSP, WebRTC, MediaMTX). Experience with Apache Superset or other data-platform / analytics surfaces. Our engineering culture Small team, high ownership, fast feedback from customers β€” and the operational rigor to make that velocity sustainable. Modern AI tooling β€” LLMs, coding agents, agent-driven workflows β€” is a normal part of how we work, and you're encouraged to push on what these tools can do. ============================ Interview Process Online (Google Meet)Team Lead Interview (0.5 - 1 hr)OnsiteTechnical Interview (2.5 hrs)CEO & VP Interview (1.5 hrs)PM/Engineer Interview (0.5 hr)HR Interview (0.5 hr)