Why This Role Stands Out
This hybrid AI Engineer role at Zealogics offers exceptional opportunities to shape cutting-edge GenAI solutions and build production-grade platforms, perfect for experienced engineers passionate about LLMOps and advanced retrieval techniques. You'll thrive in a collaborative environment focused on innovation and continuous learning, making a significant impact on enterprise AI initiatives. Apply now to advance your career in a dynamic and forward-thinking tech company.
Quick Overview
Job Description
What Youll Bring 2+, dedicated experience in practical application of GenAI solutions in an enterprise business environment. Designing and operating GenAI orchestration frameworks in production beyond vendor examples (e.g., LangChain systems), 5+ years of strong front-to-back engineering experience, focusing on AI ML platforms and workflows (Python or Java). Proven experience building and operating production grade GenAI / LLM platforms, applying patterns such as RAG, tool/function calling, agentic workflows, and validated structured outputs. Strong LLMOps expertise, including evaluation harnesses, prompt and version management, regression testing, observability, and reliability measurement in production systems.
Hands on experience building AI-first data ingestion pipelines with measurable quality, accuracy, and reliability. Advanced retrieval experience advanced vector search, including multi vector and late interaction approaches (e.g., ColBERT, chunking), multi stage retrieval pipelines, metadata filtering, reranking. Solid understanding of evaluation metrics and how they shape practical RAG system design (e.g., recall vs precision, latency vs quality, MRR, NDCG). Experience operating GenAI systems through real production failures (model regressions, retrieval degradation, prompt drift, data quality issues) and designing mitigation strategies. Nice to Have Fixed Income or Institutional Lending domain experience. Experience working in regulated environments with strong audit and control requirements. Familiarity with enterprise security, data governance, and entitlement models. Experience designing reusable internal platforms or shared developer tooling. Frontend experience is beneficial (Angular or React)
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