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Senior Applied AI Engineer – Agentic Systems

Hiring Dreams LLCMountain View, CA🇺🇸United StatesPosted 9 Sept 2026

Quick Overview

Seniority
Mid Senior
Work mode
Hybrid
Location
Mountain View, CA, United States
Posted
21 hours ago
PythonTypeScript

Job Description

Senior Applied AI Engineer – Agentic Systems

Job Description

Agentic Feature Development & Full Stack Delivery

• Design, build, and ship agentic features directly within EAS — autonomous workflow agents, multi-step task orchestration, tool-calling loops, and human-in-the-loop interaction patterns

• Own agentic features end to end — from architecture and implementation through testing, hardening, and production deployment

• Identify high-value automation opportunities within EAS workflows and translate them into well-scoped, shippable features

• Integrate new agentic capabilities cleanly into an existing product codebase without disrupting existing functionality

• Own the full stack of agentic feature delivery — backend orchestration, API integration, and front-end surfaces that expose agent capabilities to enterprise users

• Build RAG pipelines over structured and unstructured data to power intelligent retrieval, decision support, and workflow automation within EAS

• Build memory and state management systems that allow agents to maintain context across multi-step, long-running workflows

Agentic AI — Core Requirement

• Build production-grade agentic systems with the reliability, observability, and failure handling that enterprise software demands

• Design evaluation harnesses to continuously test agent accuracy, behavioral consistency, and edge case handling

• Build guardrails, fallback logic, and escalation patterns that ensure agents degrade gracefully and keep users in control

• Instrument agentic features with logging, tracing, and monitoring to observe agent behavior in production and iterate with confidence

• Participate in architecture and design reviews — contributing agentic expertise and maintaining quality standards across short delivery cycles

• Contribute to shared agentic patterns and reusable components that raise the capability baseline for the broader EAS engineering team

• Define and implement evaluation frameworks to measure agent accuracy, task completion, and behavioral consistency across diverse inputs and edge cases

• Experience with both automated eval pipelines (unit-level tool call testing, end-to-end trace evaluation) and human-in-the-loop review workflows for validating agent outputs in production

Required Experience

• Demonstrated hands-on experience building agentic AI capabilities inside a product — multi-step orchestration, tool-calling agents, memory systems, and human-in-the-loop flows used by real users in production

• Deep familiarity with agent frameworks — LangGraph, Anthropic SDK, OpenAI Agents SDK, CrewAI, AutoGen, or similar — applied in product feature delivery, not research

• Strong understanding of agentic design patterns: planning loops, tool registries, context window management, agent state machines, and failure handling

• Experience building and integrating RAG pipelines into product workflows

• Experience building production guardrails and evaluation frameworks for agentic features

• Strong full-stack engineering skills with production experience in Python and/or TypeScript

• 5+ years of full-stack software engineering with a strong shipping record

• 1+ years of hands-on experience building agentic AI features in production products

Preferred

• Experience integrating agentic capabilities into SaaS or fintech products at scale

• Familiarity with Intuit's developer platform or QuickBooks APIs

• Exposure to regulated or high-accuracy domains where agent reliability and auditability are non-negotiable

 

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