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Tavily

Forward Deployed Engineer, Enterprise

United Kingdom · Remote - Europe · Germany

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hirly's read of this role

Seniority
Mid level
Countries
GB, DE
Work mode
Remote-friendly
First seen by hirly
3 Oct 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

The Team

Forward Deployed Engineering owns how Tavily shows up technically in the field. The team sits at the intersection of customers, Product, Engineering, Sales, Partnerships, and Customer Success.

The Enterprise FDE motion focuses on Tavily’s highest-value customers and strategic enterprise opportunities — from technical discovery and solution design through proof of concept, production rollout, adoption, and expansion.

The role

As a Forward Deployed Engineer, Enterprise, you’ll work directly with Tavily’s largest and most strategic customers to design, prototype, and deploy production-grade AI systems powered by Tavily’s API. You’ll own the technical relationship across the customer lifecycle, helping enterprise teams move from early use case exploration to deployed, scalable agentic applications.

You’ll be deeply hands-on: building RAG pipelines, agent workflows, evaluation loops, reference architectures, and custom integrations alongside customer teams. You’ll also serve as a critical bridge between the field and our Product and Engineering teams, translating enterprise needs into roadmap signal.

Your responsibilities will include:

Work directly with enterprise customers to understand their AI use cases, technical architecture, success criteria, and deployment requirements.

Lead technical discovery and solution design during pre-sales and expansion conversations.

Scope, build, and deliver proofs of concept that demonstrate clear business and technical value.

Design and implement production-ready integrations using Tavily’s API, including RAG pipelines, agent workflows, internal tools, and industry-specific GenAI applications.

Partner with customer engineering, data, product, and AI teams to move use cases from prototype to production.

Monitor customer API usage patterns and recommend improvements to increase reliability, latency, coverage, and overall value.

Translate recurring customer needs, blockers, and technical patterns into clear product and roadmap input.

Create reusable enterprise assets, including reference architectures, integration templates, deployment guides, demo environments, and technical documentation.

Represent Tavily in customer architecture reviews, executive technical conversations, implementation check-ins, and post-deployment reviews.

Partner closely with Sales, Customer Success, Product, and Engineering to drive adoption, retention, and expansion across strategic accounts.

We expect you to have:

5+ years of software engineering experience, ideally in a customer-facing technical role such as Forward Deployed Engineer, Solutions Architect, Solutions Engineer, Sales Engineer, or Technical Consultant.

Strong hands-on engineering ability, especially with Python, APIs, backend systems, and production software development.

Experience building with LLMs, Retrieval-Augmented Generation, agent architectures, context engineering, and modern AI application stacks.

Experience working with enterprise customers, including technical discovery, POCs, solution design, stakeholder management, and production rollout.

Strong understanding of how enterprises evaluate, deploy, secure, and scale AI systems.

Ability to communicate clearly with both technical and executive stakeholders, including engineering leaders, product teams, AI teams, and technical decision-makers.

High autonomy, strong ownership, and comfort operating in a fast-moving startup environment.

Excellent written and verbal communication skills, with the ability to turn complex technical concepts into clear recommendations.

It will be an added bonus if you have:

Experience working with major agent or LLM orchestration frameworks such as LangChain, LlamaIndex, LangGraph, OpenAI Agents SDK, or CrewAI.

Experience with vector databases such as Pinecone, Weaviate, pgvector, Qdrant, or similar systems.

Experience with enterprise AI use cases in financial services, legal, consulting, enterprise SaaS, sales, marketing, or internal knowledge management.

Track record helping large customers move from POC to production.

Experience building internal tools, technical playbooks, demos, or reusable customer-facing assets.

Prior experience at a high-growth AI infrastructure, developer tools, or enterprise SaaS company.

Original posting on Tavily's site ↗

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