Job Description About the Role We're building the next generation of agentic AI systems, intelligent, autonomous agents that reason, act, and continuously improve. As a Machine Learning Engineer , you won't just build models, you'll architect the entire ecosystem where our AI agents live, learn, and operate.
This is a high-impact role for a product-minded, systems-level thinker who thrives in ambiguity and wants to shape foundational AI infrastructure from the ground up.
You'll work at the intersection of LLMs, distributed systems, and real-world applications , owning everything from core ML architecture to customer-facing experiences.
What You'll Do Architect & Build Agentic Systems Design and develop our core agentic AI platform, enabling autonomous reasoning, decision-making, and continuous learning Implement multi-agent orchestration frameworks (e.g., LangGraph) Own the ML & Data Infrastructure Architect a modern lakehouse-based data platform Build scalable data pipelines, feature stores, and real-time ML serving systems Develop LLM-Powered Applications Build and optimize RAG systems , prompt pipelines, and reasoning workflows Develop customer-facing applications, including a seamless AI chat interface Build Tool Machines for Agents Create reliable, safe, and extensible tools that allow agents to interact with external systems, APIs, and data sources Drive MLOps & Model Lifecycle Partner with data scientists to design infrastructure for training, fine-tuning, evaluation, and deployment Implement robust experimentation, monitoring, and feedback loops Ship Production-Grade Systems Write high-quality, scalable Python code Ensure reliability, observability, and performance across distributed systems What We're Looking For Core Requirements 3–8 years of experience in Machine Learning Engineering or Software Engineering (ML-focused) Strong production experience with Python Hands-on experience with:ML frameworks (e.g., PyTorch, TensorFlow) LLMs, agentic frameworks (e.g., LangGraph), or RAG systems Experience designing scalable ML systems (training + serving) Preferred Background Experience at top-tier tech companies (e.g., Meta, Google, Reddit, Pinterest) Combined experience across Big Tech + high-growth startup environments Background in ads, search, recommendation systems, or large-scale ML platforms Prior experience at a venture-backed startup Nice to Have MLOps and infrastructure experience:Kubernetes, MLflow, model serving systems Data engineering experience:Spark, Airflow, dbt, ETL/streaming pipelines Experience designing systems using lakehouse architectures Education Master's or PhD in Computer Science (or related field), OR Bachelor's degree + strong professional experience in software/ML engineering Tech Stack Languages & Frameworks: Python, PyTorch, TensorFlowAI/LLM: LangGraph, RAG architecturesInfrastructure: Kubernetes, MLflowData: Spark, Airflow, dbt, lakehouse architectureWho You Are Product-minded: You think about user experience, not just modelsSystems thinker: You design for scale, reliability, and extensibilityBuilder: You ship fast, iterate quickly, and thrive in ambiguityImpact-driven: You want to own and shape foundational technologyWhat Success Looks Like You've built scalable systems powering autonomous AI agents in production You've improved model performance and reliability through robust infrastructure and feedback loops You've delivered end-to-end ML products used by real customers Why Join Us Build cutting-edge agentic AI systems from the ground up Own foundational architecture across the entire AI stack Work alongside a team operating at the intersection of LLMs, infrastructure, and product Massive opportunity for ownership, impact, and growth Show more Numbers & Facts Location Mountain View, California
Skills
Application Programming Interface (API)unmatched
Artificial Intelligence (AI)unmatched
Artificial Intelligence (AI) Agentsunmatched
Computer Scienceunmatched
Continuous Improvementunmatched
Data Managementunmatched
Data Scienceunmatched
Database Extract Transform and Load (ETL)unmatched
Develop and Maintain Customersunmatched
Distributed Computingunmatched
Ecosystemsunmatched
Engineeringunmatched
Large-Scale Systemsunmatched
Machine Learningunmatched
Machine Toolunmatched
Performance Managementunmatched
Performance Modelingunmatched
Python Programming/Scripting Languageunmatched
Scalable System Developmentunmatched
Software Agentsunmatched
Software Engineeringunmatched
Startupunmatched
System Architectureunmatched
Systems Scalabilityunmatched
User Interface/Experience (UI/UX)unmatched
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