AI Native Builder

Newpage Solutions

Bristol

On-site

GBP 70,000 - 110,000

Full time

14 days+

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Benefits offered by this job

Flexible remote-first collaboration
People-first culture
Global, collaborative team

Job summary

Newpage Solutions in Bristol, UK seeks a Forward Deployed Engineer to build AI-enabled software that ships. You will collaborate with business leaders and cross-functional teams to translate concepts into prototype and production systems, delivering live demos and working solutions within tight timelines.

Apply your strong Python/TypeScript skills, experience with agentic architectures, and cloud deployment to create modular backends, fullstack apps, and scalable ML-powered workflows.

Qualifications

  • 3+ years building production applications using AI / agentic development approaches (fullstack, agents, workflows).
  • Hands-on experience with agents, not just prompted models.
  • Active, structured use of AI-assisted development tools with demonstrable workflows and sub‑agents.
  • Strong Python or TypeScript, with OOP, SOLID, 12‑factor app development, and microservices.

Responsibilities

  • Lead POCs, innovation sprints, and internal experiments to validate AI techniques.
  • Partner with product, design, and client stakeholders to translate ideas into ship-ready software.
  • Architect and ship production‑grade agentic applications using LangGraph, AutoGen, and related tooling.
  • Integrate vector DBs and retrieval pipelines into end-to-end systems and ensure robust eval harnesses.

Skills

AI development
Agentic development
Fullstack applications
LangGraph / AutoGen
Python / TypeScript
Vector databases
Cloud deployment
TDD / clean code
LLM behavior knowledge
Portfolio / OSS

Education

Bachelor's or Master's in CS / ML

Tools

LangGraph
AutoGen
Claude Agent SDK
OpenAI Assistants
MCP
GitHub Copilot

Job description

Forward Deployed Engineer

Location: Bristol, UK | Type: Contract

Your Mission

We are hiring Forward Deployed Engineers who treat AI as the substrate of how software gets built, not a tool to be cautious of, but the medium they work in.

What You’ll Do
Problem / Opportunity Discovery
  • Sit with a business or clinical leader and reframe an idea or problem into something concrete and buildable.
  • Know what to build by the end of the conversation; have a working prototype to react to by the end of the week.
  • Partner closely with product, design, and client stakeholders to translate ambiguous ideas into software that ships.
  • Demo live without a slide deck. Reframe problems out loud. Don't get stuck waiting for someone else to make the decision.
  • Lead POCs, innovation sprints, and internal research experiments to validate emerging AI techniques.
Build (fast) with AI
  • When the brief is clear, head down and produce.
  • Build modular backends in Python or TypeScript aligned with clean architecture, OOP, SOLID, and domain‑driven design.
  • Create fullstack applications, APIs, agents, workflows, and similar systems using frameworks such as Next.js, React, FastAPI, Fastify, FastMCP, and Hono.
  • Architect and ship production‑grade agentic applications using LangGraph, AutoGen, Claude Agent SDK, OpenAI Assistants, or your own orchestration layer.
  • Integrate frontier and self‑hosted LLMs (Claude, GPT, Gemini, open‑weight models) with tools, data, and external systems through MCP and custom connectors.
  • Apply RAG techniques where they actually help: vector databases (Pinecone, Chroma, Weaviate, pgvector), hybrid retrieval with ElasticSearch or Solr, and BM25 + similarity search.
  • Work across relational, document, key‑value, and graph stores as the problem demands; use event‑driven patterns where they fit, not by default.
  • Design prompt and context engineering frameworks that optimize accuracy, repeatability, cost, and latency.
  • Use AI‑assisted development tools (Claude Code, GitHub Copilot, Cursor, Codex) through structured workflows, native instructions, templates, and sub‑agents with discipline and review.
  • Fine‑tune or adapt models where the problem genuinely calls for it.
Test, Deploy, Productionize
  • Spin up the infra, write the evals, wire up the MCP servers, deploy the agents, and harden the bits that survive contact with real users.
  • Deploy on AWS, Azure, Cloudflare, or Vercel using containerization (Docker, Kubernetes) or serverless chosen for fit, not preference.
  • Treat evals as a first‑class discipline: hands‑on harnesses, not theoretical frameworks. Build with a clear‑eyed view of where current AI tooling helps and where it falls short.
  • Apply engineering practices that hold up in production: TDD, secrets management and rotation, SAST/DAST, structured logging, metrics, tracing, and automated CI/CD (GitHub Actions, Jenkins).
  • Own what you build end‑to‑end, including the infrastructure and operations that keep it running.
  • Mentor others on system design, agentic patterns, and AI engineering best practices.
What You Bring Required
  • 3+ years relevant experience building production applications using AI / agentic development approaches-fullstack applications, agents, workflows, MCPs, and more.
  • Hands‑on experience with agents, not just prompted models. You have wired tools to a model and let it run multi‑step using LangGraph, AutoGen, Claude Agent SDK, OpenAI Assistants, or your own orchestration.
  • Active, structured use of AI‑assisted development tools (Claude Code, Cursor, GitHub Copilot) with demonstrable workflows, sub‑agents, skills, and innovative approaches.
  • Strong Python or TypeScript, with OOP, SOLID, 12‑factor application development, and microservice architecture. You've built Next.js applications, FastAPI services, and similar.
  • End‑to‑end implementation experience with vector databases, retrieval pipelines, and eval harnesses.
  • Cloud‑native deployment experience across at least one of AWS, Azure, Cloudflare, or Vercel‑with Docker, Kubernetes, and GitHub Actions.
  • A no‑compromise attitude on clean code, TDD, security, observability, scalability, performance, and cost.
  • A deep working understanding of how LLMs behave‑and where they break‑and how to optimize accuracy, latency, and cost.
  • Clear writing and a willingness to reframe problems in conversation rather than wait for someone else to define them.
  • A real, recent trail of built things: GitHub, a portfolio, side projects, indie tools, or OSS contributions.
  • A founder's mindset and genuine appetite for ambiguous, high‑impact technical challenges.
  • Bachelor's or Master's in Computer Science, Machine Learning, or a related technical discipline.
  • Public writing, talks, or threads about building with AI.
  • MLOps and model serving experience (BentoML, MLflow, Vertex AI, SageMaker).
  • Streaming and batch ingestion pipelines (Spark, Airflow, Beam, Glue).
  • Healthcare or life sciences domain exposure.
  • AWS Professional certification or other relevant industry certifications.
What We Offer
  • Flexible, remote‑first work Choose where you work best while staying connected to a global, collaborative team.
  • A people‑first culture Supportive peers, open communication, and a strong sense of belonging.
  • Smart, purposeful collaboration Work with talented colleagues to create technologies that solve meaningful business challenges.
  • Balance that lasts We respect your time and support a healthy integration of work and life.
  • Room to grow Opportunities for learning, leadership, and career development, shaped around you.
  • Meaningful rewards Competitive compensation that recognizes both contribution and potential.
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