Our Client Currently looking for AI Compiler Engineer
You will work closely with software, hardware, and AI engineers to enable efficient inference execution of best-in-class GenAI LLMs, optimizing code generation and advance compiler infrastructure.
Your work will directly influence performance and scalability across AI inference stack.
Your main responsibilities will include:
- Leading and contributing to:
- Design, implement, and maintain compiler components for AI inference workloads, focusing on graph lowering, optimization, and code generation (from frameworks like PyTorch, TensorFlow, or ONNX to hardware).
- Enable validation on prototype silicon or simulators or real hardware
- Profile, debug and optimize model execution to maximize throughput and minimize latency together with energy efficiency.
- Contribute to open-source compiler ecosystems (e.g., LLVM, MLIR, XLA, IREE)
- Collaborate with hardware architecture team to leverage hardware features, maximizing performance.
WHAT WE ARE LOOKING FOR:
Technical skills:
- MLIR / LLVM / IREE / XLA compiler development
- Model formats: ONNX, TensorFlow, PyTorch, HuggingFace
- Low-level optimization (SIMD, vectorization, scheduling, data-tiling)
- Familiarity with hardware accelerators (GPU, NPU, TPU, CPU)
- Software profiling and performance analysis tools
- Git, CI/CD workflows
Nice to have:
- Experience with RISC-V architecture or AI accelerators
- Contributions to open-source MLIR or compiler projects
- Knowledge of quantization, mixed precision, and graph optimization techniques
- Exposure to system software, runtime APIs, or driver-level integration
- Background in heterogeneous computing and parallel processing
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Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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