Senior, Staff Backend Engineer - Distributed System

MetAntz

Palo Alto (CA)

On-site

USD 150,000 - 190,000

Full time

14 days+
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Benefits offered by this job

Hybrid work model
Equity
Competitive salary

Job summary

Zettabyte is looking for a Backend Engineer to build systems that orchestrate GPU clusters for AI workloads. You will design APIs to abstract complex GPU operations, develop scheduling to maximize utilization, and manage GPU lifecycles from provisioning to release.

You will work across GPU resource tracking, billing, monitoring, and multi-tenancy while collaborating with frontend teams. This hybrid role requires strong backend expertise and a startup mindset.

Qualifications

  • 5+ years backend engineering with distributed systems experience.
  • Strong proficiency in Go and Python or similar languages.
  • Experience designing APIs (REST, GraphQL, gRPC) and building scalable services.

Responsibilities

  • Design APIs that abstract GPU operations into simple developer experiences.
  • Build scheduling algorithms to maximize GPU utilization while meeting SLA.
  • Develop resource management for GPU lifecycle: provisioning, allocation, scheduling, release.
  • Create usage tracking and billing systems for GPU-hours and memory usage.
  • Implement monitoring for GPU metrics, health checks, and failure recovery.
  • Build multi-tenancy with resource isolation and fair scheduling.
  • Collaborate with frontend engineers to expose infrastructure through intuitive interfaces.
  • Leverage AI-assisted coding tools to boost productivity and code quality.

Skills

Go
Python
Distributed systems
APIs (REST/GraphQL/gRPC)
Linux

Tools

Docker
Kubernetes
Git

Job description

About Us

At Zettabyte, we're on a mission to make AI compute ubiquitous, seamless, and limitless. We're building a cloud where AI just works---anywhere, anytime. "AI Power. Everywhere." Be part of the team designing the infrastructure for the AI-first world.

Why this role exists

We need a Backend Engineer to build the systems that orchestrate GPU clusters for AI workloads. You'll create APIs that handle GPU allocation, memory management, compute scheduling, and multi-tenant isolation---challenges unique to AI infrastructure that go far beyond typical backend engineering. As part of our backend team, you'll solve problems like

  • How do we efficiently share expensive GPU resources across users?
  • How do we handle GPU memory constraints for large AI models?
  • How do we ensure quality of service when workloads compete for compute?

This is an opportunity to build infrastructure where every API call could allocate thousands of dollars worth of compute per hour, where your optimizations directly impact whether AI startups can afford to train their models.

What you`ll do
  • Design APIs that abstract complex GPU operations into simple developer experiences
  • Build scheduling algorithms that maximize GPU utilization while ensuring SLA compliance
  • Develop resource management systems for GPU lifecycle---provisioning, allocation, scheduling, and release
  • Create usage tracking and billing systems for GPU-hours, memory usage, and compute utilization
  • Implement monitoring for GPU-specific metrics, health checks, and automatic failure recovery
  • Build multi-tenancy systems with resource isolation, quota management, and fair scheduling
  • Optimize cold starts for model serving and implement efficient model loading strategies
  • Collaborate with frontend engineers to expose complex infrastructure through intuitive interfaces
  • Leverage AI-assisted coding tools (GitHub Copilot, Claude Code, Cursor IDE, etc.) to boost productivity and code quality.
You`ll thrive here if you
  • 5+ years backend engineering experience with distributed systems
  • Strong proficiency in Go, Python, or similar backend languages
  • Experience with resource scheduling, orchestration, and API design (REST, GraphQL, gRPC)
  • Understanding of hardware constraints and system optimization
  • Linux systems knowledge and containerization experience (Docker, Kubernetes)
  • Comfortable working with expensive resources where efficiency directly impacts costs
  • Excited about solving novel problems in AI infrastructure (not just another CRUD app)
  • Startup mindset---comfortable with ambiguity and rapid iteration
  • Knowledge of Mandarin
Bonus Qualifications
  • GPU or HPC cluster management experience
  • Understanding of ML,AI workload patterns and requirements
  • Experience with high-value resource allocation systems
  • Background in performance optimization for compute-intensive workloads
  • Familiarity with GPU virtualization and sharing technologies
  • Experience building billing or metering systems
Details

We provide Competitive salary and equity based on your experience and skillset;

This is a Hybrid role - 3 days in office, 2 days WFH; Must locate in Palo Alto

Applicants must be authorized to work in the United States without need for visa sponsorship.

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