AI Engineer
Job in
Tampa, Hillsborough County, Florida, 33646, USA
Listed on 2026-02-16
Listing for:
CNA Search
Full Time
position Listed on 2026-02-16
Job specializations:
-
IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Scientist
Job Description & How to Apply Below
Job Description:
Agentic AI Engineer (2+Years Experience) Role Overview
We are seeking an experienced Agentic AI Engineer to design, build, and evolve scalable agent-based AI applications and platforms. This role requires strong hands-on expertise in distributed system design, and modern agentic AI frameworks to deliver autonomous, production-grade AI systems.
You will work closely with product, data, and engineering teams to architect and implement intelligent agent workflows, LLM pipelines, and memory-driven reasoning systems in a cloud-agnostic environment.
Key Responsibilities- Implement agent-based systems, including orchestration, planning, execution, and memory management
- Build and deploy LLM-driven pipelines, including prompt strategies, tool invocation, and retrieval-augmented generation (RAG)
- Design vector-based memory systems and hybrid retrieval mechanisms (vector + keyword + structured data)
- Drive technical decisions related to architecture, tooling, and infrastructure, ensuring performance, reliability, and extensibility
- Partner with Data Scientist to develop and optimize ML models, pipelines, and orchestration logic for real-world use cases
- Collaborate within Agile teams to deliver high-quality, production-ready solutions
- 2 years of industry experience in AI/ML and Intelligent systems development
- Proven experience delivering AI or ML solutions in large-scale or enterprise environments
- Strong understanding of Agentic AI architectures, including both neural-based and symbolic agents
- Hands-on experience building multi-agent systems, including:
- Agent collaboration and coordination
- Reinforcement learning or feedback-driven optimization
- Dynamic or flexible workflows
- State, caching, and memory management
- Experience with one or more agentic AI frameworks, such as:
- Lang Graph / Lang Chain
- CrewAI
- Semantic Kernel
- Auto Gen or equivalent frameworks
- Strong proficiency in Python for building scalable, production-grade systems
- Experienced or foundational knowledge in machine learning frameworks such as Tensor Flow, PyTorch, Scikit-learn, or AutoML tools
- Solid understanding of model lifecycle management, including training, evaluation, and deployment
- Practical experience with prompt engineering techniques, including:
- Zero-shot and few-shot prompting
- Chain-of-thought and structured reasoning
- Prompt iteration and optimization
- Experience building LLM-based applications, including tool use and function calling
- Experience designing and implementing Information Retrieval (IR) and RAG systems
- Hands-on work with vector databases, embeddings, and optionally knowledge graphs
- Familiarity with hybrid search approaches (vector + lexical + metadata-based retrieval)
- Experience evaluating AI systems using quantitative and qualitative metrics
- Familiarity with A/B testing, benchmarking, and performance analysis of LLMs and prompts
- Programming
Languages:
Python (required) - Agentic AI:
Lang Graph, Lang Chain, CrewAI, Semantic Kernel, Auto Gen, OpenAI Agent SDK, or similar - Generative AI: LLMs, RAG architectures, NLP pipelines
- Cloud Platforms:
Experience with at least one major cloud provider (e.g., GCP, Azure, AWS); ability to design cloud-agnostic architectures - Version Control:
Git / Git Hub - Development Practices:
Model testing, validation, CI/CD awareness - Collaboration:
Experience working in Agile / Scrum teams
- The candidate independently designs and implements enterprise-grade agentic AI solutions with minimal supervision and zero hand-holding.
- Translates ambiguous or loosely defined business requirements into well-architected, scalable, and production-ready agentic systems.
- Delivers solutions that adhere to enterprise IT, security, and compliance standards, including data governance and access controls.
- Builds fault-tolerant, resilient agentic software, with clear handling of both success and failure scenarios.
- Implements comprehensive testing strategies, covering positive paths, edge cases, and failure modes, incorporating explicit business validation inputs.
- Proactively collaborates with cross-functional team members to promote shared learning, technical excellence, and best practices.
- Acts as a reliable team contributor during high-pressure situations, including production incidents or critical system failures, supporting root-cause analysis and rapid recovery.
- Demonstrates ownership, accountability, and a production-first mindset throughout the lifecycle of agentic AI solutions.
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