Hybrid

24-MAG

Washington (District of Columbia)

Hybrid

USD 96,000 - 276,000

Full time

14 days+
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Job summary

24-MAG LLC is seeking an experienced AI/ML Engineer to design and deploy production-grade AI systems. The role focuses on Python development, LLMs, RAG, and secure cloud infrastructure for highly regulated environments.

The candidate will lead cross-functional initiatives, implement agentic AI workflows, and ensure scalable, maintainable deployment with CI/CD practices. This hybrid role supports mission-critical AI initiatives and collaboration across security, product, and data teams.

Qualifications

  • Bachelor's degree in a relevant field or equivalent experience.
  • Hands-on experience building production AI/ML systems using LLMs and RAG.
  • Experience with multi-agent orchestration and tool-use patterns.

Responsibilities

  • Design, implement, and optimise production-grade AI/ML systems.
  • Build applications using large language models, retrieval-augmented generation, and prompt engineering.
  • Develop and orchestrate multi-agent workflows and tool-use patterns.
  • Deploy AI solutions in secure, regulated cloud environments.
  • Build reliable data pipelines and APIs for production systems.
  • Collaborate with cross-functional teams to ensure secure and scalable solutions.

Skills

Python Production
LLMs & RAG
Agentic AI
Multi-agent orchestration
Cloud AI

Education

Bachelor's degree in CS or related field

Tools

LangGraph
LangChain
AWS GovCloud
Vertex AI
Bedrock

Job description

We are sharing a full-time opportunity for an experienced AI/ML Engineer with strong expertise in Python, large language models, retrieval-augmented generation, agentic systems, cloud AI infrastructure, and production-grade machine learning to contribute to secure, mission-critical AI initiatives.

The role will focus on designing and deploying advanced AI systems using LLMs, RAG, multi-agent orchestration, secure cloud platforms, and robust data infrastructure. The ideal candidate combines deep hands-on engineering ability with strong systems thinking, production experience, and comfort working in highly regulated or security-sensitive environments.

Key Responsibilities
LLM & RAG Systems
  • Design, implement, and optimise production-grade AI/ML systems
  • Build applications using large language models, retrieval-augmented generation, and prompt engineering
  • Evaluate and improve model behaviour across complex production use cases
  • Design reliable retrieval and grounding workflows
  • Apply strong engineering standards to performance, scalability, and maintainability
Agentic AI & Multi-Agent Orchestration
  • Develop and orchestrate multi-agent systems using modern agent frameworks
  • Work with platforms such as LangGraph, LangChain, or comparable tooling
  • Design tool-use workflows and agent interaction patterns
  • Build reliable control logic for complex multi-step AI tasks
  • Evaluate agent behaviour, failure modes, and system-level trade-offs
Secure Cloud AI Infrastructure
  • Deploy and integrate AI solutions within secure cloud environments
  • Work with platforms such as AWS GovCloud, Google GovCloud, Azure IL5+, Vertex AI, and AWS Bedrock
  • Design infrastructure appropriate for sensitive or highly regulated applications
  • Apply secure engineering practices across development and deployment
  • Collaborate with security teams to ensure technical solutions align with environment-specific requirements
Data Pipelines & Knowledge Infrastructure
  • Build and maintain robust data pipelines for AI training and inference
  • Design and manage ETL workflows
  • Develop metadata catalogues, ontologies, and structured knowledge representations
  • Improve data quality, lineage, and accessibility across AI systems
  • Support reliable ingestion, transformation, and retrieval workflows
APIs, Integrations & Production Engineering
  • Build and maintain REST APIs and SDK integrations
  • Connect AI models, external systems, and data services through reliable interfaces
  • Apply modern software engineering and secure coding standards
  • Implement and maintain CI/CD workflows
  • Support deployment, monitoring, and operational reliability of production AI systems
Cross-Functional Technical Leadership
  • Collaborate closely with product, security, engineering, and data teams
  • Document technical decisions and architecture clearly
  • Communicate complex technical concepts to both technical and non-technical stakeholders
  • Contribute to engineering standards and architecture decisions
  • Help translate mission requirements into secure and scalable technical solutions
Ideal Profile
  • Strong proficiency in Python for production AI/ML development
  • Hands‑on experience building production systems using LLMs, RAG, and prompt engineering
  • Experience with multi‑agent orchestration, tool use, or agentic AI systems
  • Familiarity with LangGraph, LangChain, or comparable orchestration frameworks
  • Strong understanding of cloud AI services and secure deployment environments
  • Experience with AWS GovCloud, Google GovCloud, Azure IL5+, Vertex AI, AWS Bedrock, or related platforms is highly relevant
  • Background building data pipelines, ETL systems, metadata catalogues, or ontologies
  • Strong experience with REST APIs and SDK integrations
  • Understanding of secure coding and modern DevOps practices, including CI/CD
  • Strong written and verbal communication skills
  • Experience with government, defence, highly regulated, or compliance‑sensitive environments is advantageous
  • Familiarity with enterprise AI platforms such as Anthropic for Gov, OpenAI Enterprise, Gemini Enterprise, or Grok Enterprise is beneficial
  • Knowledge of advanced API development and metadata or context‑management platforms is a plus
Engagement Details
  • Full‑time engagement
  • Hybrid
  • Compensation: $70–$200/hour
  • Work will involve production AI/ML engineering, LLM systems, RAG, agentic workflows, cloud deployment, data infrastructure, and secure technical integration
  • Experience in government or highly regulated environments is particularly relevant
  • Strong collaboration with product, security, engineering, and data teams is central to the role
  • Technical scope may include mission‑critical systems and environments with elevated security or compliance requirements
  • Role responsibilities and technical priorities may evolve as projects and deployment requirements change
About the Platform

This opportunity is available through 24-MAG LLC. We connect experienced professionals with remote consulting opportunities across technical, evaluation, and project-based workstreams.

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