Full Stack AI Engineer

MAS Global Consulting

$135K — $160K *
Plano, TX 75025In-Person
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree required
  • 10+ years of software development experience (Java or Python), or 7+ years with full-stack and Agentic AI development
  • 2+ years hands-on experience building AI/ML applications in production
  • Strong proficiency with RAG architectures and vector stores (Pinecone, OpenSearch, etc.)
  • Experience with AI orchestration frameworks: LangChain, LlamaIndex, Semantic Kernel, or CrewAI
  • Proven prompt engineering skills with various techniques
  • Familiarity with evaluation frameworks and responsible AI practices

Responsibilities

  • Design and build AI/ML applications from architecture to deployment
  • Implement RAG pipelines and embedding models
  • Build and orchestrate AI agents using frameworks like LangChain
  • Develop solutions using AWS Bedrock and model APIs
  • Apply advanced prompt engineering techniques
  • Create conversational AI experiences including chatbots and voicebots
  • Maintain APIs, microservices, and event-driven architectures
  • Own CI/CD pipelines and containerization for production systems

Benefits

  • Collaborative and fast-paced work environment
  • Opportunity to work with cutting-edge AI technologies
  • Focus on responsible AI practices and evaluation frameworks
  • Hands-on coding and problem-solving culture
  • Onsite work allows for immediate team collaboration
Full Job Description
Location: Plano, TX • Onsite, 5 days/week

Who You Are

You are a Senior AI/ML Full Stack Engineer who brings deep hands-on experience building production-grade AI applications with Java or Python. You've spent 7-10+ years mastering full-stack development and have moved confidently into agentic AI, RAG architectures, and LLM orchestration. You're just as comfortable designing a vector store retrieval pipeline as you are hardening a CI/CD deployment on AWS. You thrive in fast-paced, in-office environments where live coding and hands-on problem solving are part of the culture, and you're excited to bring responsible AI practices • guardrails, evaluation frameworks, and content filtering • into everything you build.

What You'll Do
  • Design and build AI/ML applications end-to-end, from architecture through production deployment
  • Implement RAG pipelines, including chunking strategies, embedding models, and vector store integration (Pinecone, OpenSearch, pgvector, FAISS)
  • Build and orchestrate AI agents using frameworks such as LangChain, LlamaIndex, Semantic Kernel, or CrewAI
  • Develop and deploy solutions using AWS Bedrock, Anthropic Claude models, and model invocation APIs
  • Apply advanced prompt engineering techniques • system prompts, few-shot, chain-of-thought, tool use, structured outputs
  • Build conversational AI experiences, including chatbots (text) and voicebots (speech-to-text, text-to-speech)
  • Design and maintain APIs (REST, GraphQL), microservices, and event-driven architectures
  • Own CI/CD pipelines, containerization (Docker, ECS/EKS), and infrastructure-as-code for production systems
  • Implement evaluation frameworks, guardrails, content filtering, and responsible AI practices across LLM-powered features

What You Bring
  • Bachelor's degree required
  • 10+ years of software development experience (Java or Python), OR 7+ years if entirely full-stack + Agentic AI development experience
  • 2+ years hands-on experience building AI/ML applications in production
  • Strong proficiency with RAG architectures • chunking strategies, embedding models, vector stores (Pinecone, OpenSearch, pgvector, FAISS)
  • Experience with AI orchestration frameworks: LangChain, LlamaIndex, Semantic Kernel, or CrewAI
  • Hands-on experience with AWS Bedrock, Anthropic Claude models, and model invocation APIs
  • Proven prompt engineering skills • system prompts, few-shot, chain-of-thought, tool use, structured outputs
  • Experience building conversational AI: chatbots (text) and voicebots (speech-to-text, text-to-speech)
  • Proficiency with AWS services (Lambda, Step Functions, API Gateway, S3, DynamoDB, SQS)
  • Experience with CI/CD pipelines, containerization (Docker, ECS/EKS), and infrastructure-as-code
  • Strong understanding of API design (REST, GraphQL), microservices architecture, and event-driven systems
  • Familiarity with evaluation frameworks for LLM outputs
  • Experience with guardrails, content filtering, and responsible AI practices

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