Staff Software Engineer, Model Infrastructure

Harvey

$236K — $290K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of software engineering experience in large-scale distributed systems.
  • Experience in designing and operating highly available production services.
  • Proficient in programming languages such as Go, Java, Python, Rust, or C++.
  • Strong understanding of distributed systems, cloud infrastructure, and observability practices.
  • Experience managing technical projects across multiple engineering teams.
  • Ability to balance long-term architectural goals with immediate execution needs.
  • Exceptional communication and collaboration skills.

Responsibilities

  • Lead the design and implementation of the Model Infrastructure platform.
  • Ensure high availability and low latency for AI inference systems.
  • Develop systems for automatic model degradation detection and intelligent traffic routing.
  • Manage model provisioning, capacity, and failover across multiple AI providers.
  • Integrate new model providers and maintain related APIs and SDKs.
  • Improve observability through health metrics, analytics, and telemetry.
  • Collaborate with Product Engineering to support AI model launches and production monitoring.

Benefits

  • Opportunity to work at the forefront of AI technology.
  • Collaborative environment with cross-functional teams.
  • Hands-on leadership role with high impact on product capabilities.
  • Access to learning and growth through mentorship opportunities.
  • Work with a diverse range of AI providers.
Full Job Description
Role Overview

As a Staff Software Engineer on the Model Infrastructure team, you'll lead the design and development of the systems that power every AI request at Harvey. You'll partner closely with AI Research, Product Engineering, Infrastructure, and external model providers to build a platform that is highly reliable, scalable, observable, and efficient.
What You'll Do
  • Lead the design and implementation of Harvey's Model Infrastructure platform.
  • Build systems to ensure high availability, low latency, and operational excellence for AI inference.
  • Design and improve Harvey's Unified Model Controller (UMC) and Model Selector platform to automatically detect model degradations and intelligently route traffic based on reliability, latency, quality, compliance, and cost.
  • Develop systems for model provisioning, capacity management, failover, and traffic engineering across multiple AI providers.
  • Integrate new model providers and maintain provider APIs and SDKs, enabling Harvey to rapidly adopt emerging frontier models.
  • Improve observability through health dashboards, alerting, token usage analytics, cost reporting, and end-to-end telemetry.
  • Partner with Product Engineering to support model launches, experimentation, and proactive monitoring of production AI workloads.
  • Drive infrastructure efficiency through capacity planning, utilization optimization, and cost visibility.
  • Collaborate with AI Research to build the infrastructure foundation for future model evaluation, training, and deployment.
  • Lead cross-functional technical initiatives and mentor engineers across the organization.


What You'll Build

You'll help build the core platform behind Harvey's AI capabilities, including:

Model Reliability & Operations
  • Model health monitoring
  • Automated failover and recovery
  • Capacity provisioning
  • Operational tooling and incident automation
Unified Model Controller (UMC)
  • Policy-based model routing
  • Intelligent Model Selector
  • Model health monitoring
  • Traffic management
  • Reliability and latency optimization
Provider Platform
  • Multi-provider architecture
  • API and SDK integrations
  • OpenAI, Anthropic, Azure OpenAI, Fireworks, Baseten, and future providers
  • Rapid adoption of new frontier models
Observability & Cost Platform
  • Token usage analytics
  • Cost attribution
  • Latency and reliability dashboards
  • Capacity forecasting
  • Utilization optimization
AI Platform Foundation
  • Infrastructure supporting model evaluation
  • Model deployment and operations
  • Future model training platform
  • Agent infrastructure and CcaaS
What You Have
  • 7+ years of software engineering experience building large-scale distributed systems.
  • Experience designing and operating highly available production services.
  • Strong programming skills in Go, Java, Python, Rust, or C++.
  • Deep understanding of distributed systems, cloud infrastructure, networking, and observability.
  • Experience leading technical projects across multiple engineering teams.
  • Ability to balance long-term architecture with pragmatic execution.
  • Strong communication and collaboration skills.
  • Passion for building foundational platforms that enable other engineering teams.


Nice to Have
  • Experience with AI infrastructure, LLM serving, or machine learning platforms.
  • Experience with model routing, inference gateways, or policy-based serving systems.
  • Experience working with OpenAI, Anthropic, Azure OpenAI, Fireworks, Baseten, or open-source LLMs.
  • Experience with Kubernetes, cloud infrastructure, and service mesh technologies.
  • Experience with large-scale observability and SRE best practices.
  • Experience with data infrastructure technologies such as Kafka, Spark, Flink, Airflow, or Iceberg.
  • Familiarity with GPU infrastructure or model training platforms.


Compensation Range

$236,000 - $290,000 USD

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