Applied AI Engineer

Austin, TX, US • Posted 2 days ago • Updated 2 days ago
Full Time
No Travel Required
On-site
$70,000 - $130,000/yr
Fitment

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Job Details

Skills

  • API
  • AS3
  • Amazon Web Services
  • Docker
  • Artificial Intelligence
  • Economics
  • Caching
  • FOCUS
  • Data Compression
  • Evaluation
  • Kubernetes
  • Machine Learning (ML)
  • Good Clinical Practice
  • Debugging
  • Google Cloud Platform
  • Microsoft Azure
  • Prototyping
  • Orchestration
  • TypeScript
  • Regression Analysis
  • Microsoft Certified Professional
  • SDK
  • Optimization
  • Workflow
  • Streaming

Summary

Austin, TX | 8 - 10 years of experience

Job Description
Must-Have Requirements
Requirement Details
Backend/Systems Experience 
3+ years building production backend or distributed systems (pre-AI experience required)
Production AI Systems 
Has shipped AI/LLM features serving real users at scale — not just prototypes or demos
Agentic Systems 
Has built AI agents, skills, tools, or MCP (Model Context Protocol) integrations
Python 
Proficient for backend development
Secondary Language 
Working knowledge of Go, TypeScript, or Rust
Cloud Infrastructure 
Deep experience with AWS/Google Cloud Platform/Azure — cost optimization, compute decisions, not just deployment
Container & Orchestration 
Hands-on with Docker and Kubernetes — can build, deploy, debug, and scale services themselves
LLM Integration 
Understands token economics, context limits, rate limiting, structured outputs, API failure modes
LLM Evaluation 
Understands how to evaluate LLM outputs and the inherent challenges (non-determinism, quality measurement, regression detection)
 
Hands-On Engineer 
Not just an architect — writes code, debugs production issues, deploys their own work
________________________________________
Preferred / Differentiators
• Built multi-step agentic workflows with tool use and function calling
• Experience with agent orchestration frameworks (LangGraph, CrewAI, Claude Agent SDK, Google ADK, OpenAI ADK)
• Built guardrails, fallbacks, or graceful degradation for AI systems
• Streaming inference and async agent orchestration
• Cost/latency optimization: caching, batching, prompt compression
• ML observability tools: Langfuse, Arize, Braintrust, W&B
• Retrieval systems (vector search, hybrid search) — as a tool, not the focus
 
Location: Austin, TX
 
Salary Range:$70,000-$130,000 Per a Year
 
#LI-AS3
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 91172467
  • Position Id: 9031388
  • Posted 2 days ago
Contact the job poster
PJ

Preetirekha Jena

Recruiter @ TATA Consultancy Services Limited
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