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Hyppies Hiring! Full Time AI Engineer (Agentic Systems) in Federal Territory - Ricebowl

AI Engineer (Agentic Systems)

Hyppies

Undisclosed

KL City, Federal Territory

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Working Location

  • Kuala Lumpur Federal Territory Malaysia

Job Description

Responsibilities

We are seeking an AI Engineer with a strong, practical builder mindset to drive the development of next-generation, production-grade Generative AI applications.

In this role, you will move past basic wrappers and prompt engineering to architect complex, multi-stage agentic workflows, multi-agent systems, and optimized Retrieval-Augmented Generation (RAG) pipelines. You will bridge the gap between bleeding-edge AI models and highly scalable backend infrastructure.


Key Responsibilities
  • Design, build, and deploy multi-stage autonomous agent workflows, multi-agent systems, and advanced conversational workflows to support real-time interactions.
  • Architect scalable backend services and robust APIs to support real-time AI inference and production-ready Agentic AI solutions.
  • Build and optimize multi-stage RAG systems utilizing advanced data pipelines, vector search databases, and modern data platforms.
  • Design and implement comprehensive logging, tracing, and automated evaluation frameworks to measure the reliability, accuracy, and relevance of LLM/GenAI outputs.
  • Evaluate, fine-tune, and deploy custom foundation models across languages and modalities using proprietary and external datasets.
  • Apply cutting-edge AI guardrails, responsible AI principles, and adversarial red-teaming strategies to ensure compliance, privacy, and security.

Requirements & Technical Skills:
  • 3-5 years of hands-on experience in Machine Learning Engineering, Software Engineering, and production-level Generative AI/LLM technologies.
  • Deep experience with LLM orchestration and multi-agent frameworks (e.g., LangGraph, LangChain, LlamaIndex, or CrewAI).
  • Advanced mastery of Python and standard backend frameworks (e.g., FastAPI, Flask) with a strong builder profile over pure academic research.
  • Proven experience deploying foundation models on enterprise cloud AI platforms (e.g., AWS Bedrock, Azure OpenAI, or GCP Vertex AI).
  • Familiarity with LLM tracing and testing ecosystems (e.g., MLflow, LangSmith, Langfuse, Arize Phoenix, Ragas, TruLens).
  • Solid understanding of Transformer architectures, NLP techniques, multimodal AI, token optimization, and semantic vector search.

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