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AI Compiler Optimization Engineer - Edinburgh

Microtech Global Ltd
Bonnyrigg · posted 1 August 2026
Location
Bonnyrigg, Scotland
We are seeking a skilled AI Compiler Optimization Engineer to optimize AI model inference performance through advanced compiler technologies. You will focus on performance tuning for CPU or hybrid CPU/XPU heterogeneous architectures, profiling AI frameworks to discover new optimization opportunities, and delivering cutting-edge insights from industry research. Key Responsibilities: Compiler-Based Performance Optimization: Implement compiler techniques (e.g., MLIR level optimizations, LLVM backend optimizations) to enhance inference performance on CPU and CPU/XPU hybrid systems

Optimize JIT level compute graphs with operator fusion, memory allocation and etc. for latency/throughput improvements

Preferred: Experience with LLVM/MLIR development

AI Model Profiling & Framework Optimization: Profile end-to-end inference workflows on frameworks like TensorFlow, PyTorch, ONNX, and llama.cpp to identify hotspots and bottlenecks

Propose and implement optimization strategies (e.g., kernel tuning, graph-level optimizations)

Preferred: Experience optimizing models on multiple AI frameworks

Research & Insight Development: Track and analyze the latest advancements in AI & compiler research (academic papers, open-source projects)

Produce actionable insight reports summarizing trends, benchmarks, and potential optimizations

Preferred: Strong technical writing skills with prior publications or reports

TPBN1_UKTJ
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