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Applied AI Senior Engineer

Job

amps talent solutions

Sunnyvale, TX (In Person)

$156,000 Salary, Full-Time

Posted 2 days ago (Updated 4 hours ago) • Actively hiring

Expires 6/22/2026

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Job Description

Applied AI Senior Engineer amps talent solutions Sunnyvale, TX Job Details Contract $70 - $80 an hour 4 hours ago Benefits Relocation assistance Employee assistance program Flexible schedule Qualifications AI models Pandas AWS Machine learning libraries Machine learning frameworks Full Job Description Job Summary We are seeking a dynamic and innovative Applied AI Senior Engineer to lead the development and deployment of cutting-edge artificial intelligence solutions. In this role, you will harness your expertise in machine learning, natural language processing, and big data analytics to solve complex problems and drive strategic initiatives. You will collaborate with cross-functional teams to design scalable AI models, optimize data pipelines, and implement robust solutions that enhance business outcomes. This position offers an exciting opportunity to work at the forefront of AI technology, leveraging tools like TensorFlow, Spark, Hadoop, and cloud platforms such as AWS to deliver impactful results. Duties 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/GCP/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 Screening Questions for Candidates 1. "Describe a production AI agent or skill system you built. What broke and how did you fix it?" 2. "Have you built MCP servers/integrations or custom tool-use systems for LLMs?" 3. "How do you evaluate whether an LLM-based feature is working well? What makes this hard?" 4. "Walk me through how you'd deploy and scale an AI service on Kubernetes." Not a Fit If Primarily a model trainer/fine-tuner (we're not training models) AI experience is mainly academic, research, or tutorial-based No production systems experience (only notebooks/demos) Looking for entry-level role with heavy mentorship Background is primarily data science/analytics rather than engineering "Architects" who don't write or deploy code themselves
Pay:
$70.00 - $80.00 per hour
Benefits:
Employee assistance program Flexible schedule Relocation assistance
Work Location:
In person

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