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Posted Apr 27, 2026

Generative AI Engineer || Remote || Permanent Fulltime

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• *Role: AI Engineer • *Location: Frederick, MD/Remote • *Permanent Fulltime • *Job description: We are seeking an AI Engineer specializing in Generative AI and Agentic AI systems. This role focuses on designing, developing, and operationalizing intelligent AI agents, Large Language Model (LLM)-based applications, Retrieval-Augmented Generation (RAG) systems, and autonomous multi-agent workflows. • *Key Responsibilities • *GenAI Development & • LLM Engineering • Build and deploy LLM-based applications leveraging frameworks like LangChain. • Develop RAG pipelines using vector databases for enterprise knowledge retrieval. • Develop data pipelines to create structured and unstructured datasets for LLM and agent workflows. • Optimize prompts, system instructions, and memory architectures for robust, domain-specific reasoning. • Evaluate model performance—accuracy, hallucination mitigation, latency, and safety compliance. • *2. Agentic AI Design & • Autonomous Workflow Engineering • Implement agentic systems capable of planning, reasoning, tool usage, and multi-step decision-making. • Build multi-agent ecosystems (task agents, planning agents, critic agents, evaluation agents) to automate complex workflows. • Integrate agents with APIs, enterprise systems, and external tools to create end-to-end autonomous solutions. • Ensure agent alignment with Responsible AI principles—traceability, guardrails, human oversight. • *3. AI Systems Integration & • Deployment • Build scalable microservices and APIs for GenAI and agentic components. • Deploy models and agents using Azure ML or Kubernetes-based stacks. • 4. Collaboration & • Influence • Engage with business and product stakeholders to convert ambiguous use cases into technical solutions. • Support internal capability building—AI best practices, prompt engineering, GenAI safety, and evaluation frameworks. • *Required Skills & • Qualifications** • Strong hands-on expertise in Python, LLM frameworks, and ML/DL libraries (Transformers, PyTorch, TensorFlow, scikit-learn). • Experience with API development, microservices, Docker, and Kubernetes. • Experience building RAG systems with vector databases and embeddings. • Experience with agentic frameworks or building custom autonomous agents. • Strong understanding of LLM safety, hallucination mitigation, and evaluation techniques. • Cloud proficiency in Azure (or any other hyperscalers - AWS, GCP etc)