AI Engineer (GCP / RAG / Python)

AI Engineer (GCP / RAG / Python)

ASTRAL FOREST PROSTA SPÓŁKA AKCYJNA

130 - 180 PLN / HOUR
B2B

Hexjobs Insights

Full-time AI Engineer in Warszawa, responsible for developing GenAI applications, building data pipelines, and optimizing solutions. Requires 2-5+ years in AI/ML, strong Python skills, and familiarity with GCP.

Schlüsselwörter

Python
AI
ML
LangChain
GCP
NLP
RAG
software deployment

Technologies we use

About the project

Your responsibilities

  • Develop and deploy enterprise-grade GenAI applications: conversational search, RAG systems, multimodal agents, and domain-specific classification services.
  • Build robust data and language-processing pipelines using Python, LangChain, and cloud-native components.
  • Implement retrieval architectures using Vertex AI Search, Vector Search, or other vector database solutions.
  • Optimize GenAI solutions for quality, reliability, latency, and cost - including RAG tuning and targeted fine-tuning where justified by business value
  • Define and implement evaluation frameworks: automated tests, regression checks, hallucination/faithfulness indicators.
  • Set up monitoring for model performance, app reliability, and business-aligned KPIs.
  • Establish best practices around deployment, versioning, observability, incident reviews, and repeatable delivery patterns.
  • Translate business goals into viable, scalable GenAI architectures on Google Cloud - with clear assumptions, risks, and acceptance criteria.
  • Lead or co-lead discovery and feasibility workshops, focusing on use case framing and data readiness within the GCP ecosystem.
  • Support presales: providing solution options, delivery approaches, and realistic implementation plans.

Our requirements

  • 2-5+ years of hands-on AI/ML development experience, including LLMs and NLP.
  • Strong Python engineering skills; practical experience with LangChain, Streamlit, and ML frameworks.
  • Solid understanding of RAG architectures and LLM fine-tuning.
  • Familiarity with the end-to-end AI/ML lifecycle, evaluation methods, efficiency metrics, and deployment patterns.
  • Ability to communicate clearly with both technical and non-technical stakeholders
  • Proficiency in English.

Optional

  • Experience delivering AI solutions in consulting environments.
  • Awareness of GenAI-related security considerations: PII, access control, prompt injection, data residency.
  • Experience designing systematic evaluation frameworks for LLMs.
  • Cloud-native deployment experience (containers, CI/CD, infra patterns) within GCP.

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What we offer

Aufrufe: 9
Veröffentlichtvor 30 Tagen
Läuft abin etwa 2 Stunden
Art des VertragsB2B

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