Chief Forward Deployed Engineer
EPAM Systems (Poland) sp. z o.o.
Усі вакансії
B2B
Senior
Kraków
Діє до 4 жов 2026
14 днів тому
Коротко
Chief Forward Deployed Engineer role requiring 7+ years of experience in AI/LLM production applications. Responsibilities include designing AI-native systems, evaluation pipelines, and Python development. Requires strong agent-design, RAG, and cloud deployment skills.
Ключові слова
Стислий виклад підготував ШІ на основі тексту оголошення.
Technologies we use
About the project
This is how we organize our work
This is how we work
Your responsibilities
- Design, build, and ship AI-native systems E2E — agents, workflows, RAG, and the harness: custom tool calling, sandboxing, context engineering and sub-agents, caching, compaction
- Build the evaluation pipelines and use them to prove the system is genuinely useful
- Design for failure in the agent loop: retries, model fallbacks, cost limits, and human-in-the-loop on consequential actions
- Capture domain expertise and repeatable workflows — so what works on one engagement carries to the next
- Engage early, to help shape the use case and check technical feasibility
- Write production-grade Python: integrations, APIs, data access, deployment
- Work directly with SMEs and end-users — interviews, UAT, observing the real workflow — and validate that the system fits how people actually work
Our requirements
- 7+ years of engineering experience, with a strong recent track record building production AI / LLM applications (not prototypes or research only)
- Strong agent-design judgment — task-harness fit, matching the harness to the context, failures, and policies of the actual task rather than calling a model in a loop
- The ability to operate close to the client: lead discovery and feasibility conversations, work directly with SMEs and end-users, and explain technical trade-offs to both technical and non-technical audiences
- Hands-on experience with agentic frameworks (LangChain, LangGraph, Semantic Kernel, or similar) and major LLM providers (OpenAI, Anthropic, Google Gemini)
- Expert-level Python and solid software engineering fundamentals
- Strong RAG and retrieval skills: vector databases, embeddings, hybrid search, re-ranking, chunking, and context management
- Proven experience evaluating generative AI quality — LLM-based evaluation, heuristics, custom eval frameworks — and using observability/tracing tools (LangSmith, Arize Phoenix, Langfuse, or similar)
- Production deployment experience on at least one major cloud (AWS, Azure, or GCP) with containerization, CI/CD
- Sound judgment under ambiguity — scoping, sequencing, and making the call on speed vs. quality vs. scope
- English at C1 level
Optional
- Experience designing experiments, A/B testing, and iterating on AI products against real user behavior and business metrics
- Background in NLP, Data Science, or applied ML, with experience moving models into production
- Familiarity with MCP, A2A, Agent Skills, and emerging agent standards
- Experience with enterprise AI platforms (AWS Bedrock AgentCore, Databricks Genie, Microsoft Foundry, Gemini Enterprise)
- Exposure to AI governance, security, and compliance (guardrails, prompt-injection prevention)
- Prior client-facing or pre-sales exposure in a consulting or services context
What we offer
This is how we work on a project
Development opportunities we offer
Benefits
| Опубліковано | 2026-09-04 |
| Джерело |
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Інструменти, налаштовані під цю вакансію.
Залишилось 16 днів
04.10.2026
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Інструменти, налаштовані під цю вакансію.
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