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Senior AI Solutions Developer

Inabia Software & Consulting Inc.

Rutherford, NJContract

Inabia Software & Consulting Inc.

Posted 2026-09-14

About the role

We are seeking an experienced AI/LLM Software Engineer  to design, develop, and deploy enterprise-grade AI applications, assistants, agents, and intelligent workflows. The ideal candidate will have strong hands-on Python and software engineering  experience combined with practical expertise in LLMs, RAG, agentic AI, orchestration frameworks, tool integration, and AI observability. This is a highly collaborative, stakeholder-facing role requiring the ability to translate business requirements into secure, scalable, and production-ready AI solutions. Key Responsibilities Design and develop enterprise AI/LLM applications, assistants, agents, and intelligent workflows. Build scalable and production-ready solutions using Python  and modern software engineering practices. Develop agentic AI workflows  using frameworks such as LangGraph  or similar orchestration technologies. Implement tool integrations using MCP/FastMCP  or comparable protocols and frameworks. Build and integrate REST APIs, enterprise systems, databases, and SQL-based solutions. Develop RAG (Retrieval-Augmented Generation)  solutions using structured and unstructured data sources. Design secure data-access patterns incorporating authentication, authorization, and enterprise security requirements. Implement AI evaluation, monitoring, tracing, and observability using tools such as LangSmith, Weights & Biases (W&B), OpenTelemetry, or similar platforms. Establish mechanisms to evaluate LLM accuracy, reliability, latency, cost, and overall application performance. Incorporate Human-in-the-Loop (HITL)  processes into AI workflows where appropriate. Apply principles of AI governance, responsible AI, privacy, security, and compliance  throughout the development lifecycle. Collaborate directly with business stakeholders, product teams, architects, and engineering teams to identify opportunities and deliver AI solutions. Act as a forward-deployed engineer, working closely with stakeholders to understand problems, prototype solutions, gather feedback, and rapidly iterate. Troubleshoot, optimize, and continuously improve AI applications in production environments. Contribute to technical documentation, architecture decisions, development standards, and best practices. Required Qualifications 5–8 years of professional software engineering experience. Strong hands-on experience with Python  and software development. Demonstrated experience building AI/LLM-powered applications  in enterprise or production environments. Experience developing AI assistants, agents, agentic workflows, or LLM applications. Hands-on experience with MCP/FastMCP  or similar tool-integration technologies. Experience with LangGraph  or comparable AI/agent orchestration frameworks. Strong understanding of APIs, SQL, databases, and enterprise system integration. Experience implementing RAG solutions  using structured and/or unstructured data. Experience with LLM evaluation, monitoring, tracing, or observability tools such as LangSmith, W&B, OpenTelemetry, or similar. Understanding of authentication, authorization, secure data access, and enterprise security practices. Strong understanding of AI governance, responsible AI, privacy, security, and Human-in-the-Loop concepts. Excellent communication and stakeholder-management skills. Ability to work directly with customers/business stakeholders in a forward-deployed engineering  capacity. Preferred Qualifications Experience working with major LLM platforms and APIs such as OpenAI, Azure OpenAI, Anthropic, or similar. Experience with vector databases, embeddings, semantic search, and retrieval pipelines. Experience deploying AI applications in cloud environments such as Azure, AWS, or GCP. Familiarity with CI/CD, Git, containers, and modern DevOps practices. Experience building enterprise-grade AI solutions with strong emphasis on security, scalability, reliability, and governance. Experience working in consulting, professional services, or customer-facing engineering environments. Key Technologies Python | LLMs | Generative AI | AI Agents | AI Assistants | MCP / FastMCP | LangGraph | RAG | APIs | SQL | Databases | LangSmith | W&B | OpenTelemetry | Authentication | Authorization | AI Governance | Responsible AI | HITL | Enterprise Integration

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