AI engineer

Robotics Technologies LLC
Dallas, TX, United States
about 2 months ago

Role details

Contract type
Temporary contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
2 years minimum
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Amazon Web Services Systems Engineering Confluence JIRA Automation of Tests Microsoft Azure Cloud Computing Continuous Integration Data Architecture Data Manipulation Languages Github
+27 more
Python (Programming Language) OAuth Object-Oriented Software Development Performance Tuning Role-Based Access Control SQL Databases Systems Integration Retrieval-Augmented Generation Large Language Models Multi-Agent Systems Prompt Engineering Software Security Generative AI Backend Fastapi Containerization Integration Tests Kubernetes Information Technology Low Latency Playwright Atlassian Tools Machine Learning Operations Restful APIs Automation Anywhere Docker Databricks

Job description

The candidate should be able to serve as the lead technical contributor for designing and deploying enterprise-grade AI systems. This role demands a senior AI engineer who can handle high-level architectural design and hands-on implementation of complex agentic workflows. The candidate will be responsible for building the ā€œAIObserveā€ ecosystem, ensuring that probabilistic AI outputs are translated into deterministic, secure, and high-value business outcomes.

Core Responsibilities

  • Architecting Agentic Systems: Design and implement multi-agent systems using the Model Context Protocol (MCP) to enable seamless tool-calling across platforms like Atlassian and GitHub.
  • Enterprise RAG Implementation: Lead the development of sophisticated Retrieval-Augmented Generation (RAG) layers, integrating vector databases like Milvus with enterprise knowledge bases (Jira/Confluence).
  • Orchestration & Workflow Automation: Build and optimize backend services using FastAPI and Azure Bot Service to handle real-time message routing and automated ticket fulfillment.
  • High-Privilege Automation: Develop secure browser automation scripts using Python and Playwright to handle complex tasks such as RBAC validation and post-true-up process automation.
  • Security & RBAC Engineering: Engineer robust Role-Based Access Control (RBAC) within AI agents to ensure high-privilege operations are executed safely and within compliance.
  • Performance Tuning: Optimize system latency to ensure AI responses and backend acknowledgments meet strict enterprise thresholds (<7 seconds).
  • Architecting Observability Pipelines: Design and implement end-to-end telemetry for AI agents. This includes capturing not just system logs, but also LLM-specific traces (latency, token usage, and ā€œhallucinationā€ scores) to provide a 360-degree view of system health
  • LLMOps Infrastructure: Own the deployment lifecycle, including CI/CD for prompt engineering, automated testing of RAG retrieval accuracy, and monitoring for ā€œmodel driftā€ in production.
  • Cross-functional Collaboration: Working with product managers, data scientists, and business stakeholders to translate needs into AI solutions.

Requirements

Do you have experience in Systems engineering?, Do you have a Bachelor’s degree in statistics?, * BS/Advanced degree in quantitative fields: Computer Science, Data Science, Engineering, Business Analytics, Math/Statistics, or a related field

  • 7+ years of experience in applied AI engineering or related role with 2+ years in agentic development, and/or with a combination of context/prompt engineering
  • Expert-level Python proficiency with emphasis on modular, object-oriented code, strict typing, and rigorous unit/integration testing for production
  • Experience with building both conversational agents and workflow agentic processes in production
  • Applied experience with multiple LLM stacks/frameworks (e.g., OpenAI, Claude, Gemini, RAG pipelines), and agent orchestration systems (e.g., LangGraph, AutoGen, CrewAI, or LangChain building collaborative autonomous and complex AI workflows
  • Demonstrated comfort with prompt design strategies (chain-of-thought, few-shot) and context window optimization to ensure high-quality LLM outputs
  • Familiarity with cloud platforms (AWS/Azure), REST APIs, and containerization (Docker, K8s)
  • Experience implementing and managing Vector Databases (e.g., Pinecone, Milvus, Weaviate) for RAG (Retrieval-Augmented Generation) pipelines.
  • Experience with Azure bot services, Fast API, OAuth for API security is recommended.
  • Proficiency in Databricks and SQL (DDL/DML) driving scalable data architecture and holistically integrating prompt designs, vector databases, and memory strategies to deliver advanced LLM solutions
  • Experience developing and applying state-of-the-art techniques for optimizing training and inference software to improve hardware utilization, latency, throughput, and cost
  • Passion for staying abreast of the latest AI research and AI systems, and judiciously applying novel techniques in production
  • Excellent communication and presentation skills, with the ability to articulate complex AI concepts to peers

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