AI Performance Optimization Engineer
Location: Remote
Compensation: Salary
Reviewed: Mon, Jun 01, 2026
This job expires in: 30 days
Job Summary
Focusing on optimizing performance for AI workloads, the full-time AI Performance Optimization Engineer will work remotely to enhance throughput, minimize latency, and reduce costs across training and inference pipelines while collaborating with cross-functional teams.
Key Responsibilities
- Profile and optimize AI training and inference pipelines for performance metrics
- Identify and eliminate bottlenecks in data loading, model compute, and memory usage
- Drive compiler-level optimizations and collaborate with engineering teams to implement best practices
Required Qualifications
- Bachelor's or Master's degree in Computer Science, Computer Engineering, or a related field
- Six or more years of experience in performance engineering, ML systems, or HPC
- Strong proficiency in Python and C++
- Hands-on experience optimizing deep learning workloads on modern GPUs
- Deep understanding of distributed training and inference techniques
COMPLETE JOB DESCRIPTION
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