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8 months ago
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Huaweiuk·8 months ago
8 months ago

Systems Research Engineer

Edinburgh, United KingdomInternshipMid · 2-5 yearsAI / ML Researcher

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About this role

 

Job Vision

In an era where LLM are rebuilding the foundational software stack, Huawei’s CloudMatrix super-node clusters and AI-native infrastructure are reshaping how large-scale models are trained, served, and deployed. The Edinburgh Research Centre plays a key role in this transformation, driving new AI Infra & Agentic Serving architectures and helping define Huawei’s next-generation large-scale data centre and AI infrastructure systems. Positioned at the intersection of advanced systems research and industrial-scale engineering, our team turns innovative system designs into deployable, real-world technologies.

We are seeking Systems Research Engineers with a strong interest in computer systems, distributed AI infrastructure, and performance optimization. These roles are ideal for recent PhD graduates or exceptional BSc/MSc engineers looking to build research-driven engineering experience in areas such as operating systems, distributed systems, AI model serving, and machine learning infrastructure. You will work closely with senior architects on real-world projects, helping to prototype and optimize next-generation AI infrastructure.

Key Responsibilities

·       Distributed Systems Research & Development:
Architect, implement, and evaluate distributed system components for emerging AI and data-centric workloads. Drive modular design and scalability across CPU, GPU, and NPU clusters, building highly efficient serving and scheduling systems.

·       Performance Optimization & Profiling:
Conduct in-depth profiling and performance tuning of large-scale inference and data pipelines, focusing on KV cache management, heterogeneous memory scheduling, and high-throughput inference serving using frameworks like vLLM, Ray Serve, and modern PyTorch Distributed systems.

·       Scalable Model Serving Infrastructure:
Develop and evaluate frameworks that enable efficient multi-tenant, low-latency, and fault-tolerant AI serving across distributed environments. Research and prototype new techniques for cache sharing, data locality, and resource orchestration and scheduling within AI clusters.

·       Research & Publications:
Translate innovative research ideas into publishable contributions at leading venues (e.g., OSDI, NSDI, EuroSys, SoCC, MLSys, NeurIPS, ICML, ICLR) while driving internal adoption of novel methods and architectures.

·       Cross-Team Collaboration:
Communicate technical insights, research progress, and evaluation outcomes effectively to multidisciplinary stakeholders and global Huawei research teams.

 

Person Specification

Required Qualifications and Skills:

·       Bachelor’s or Master’s degree in Computer Science, Electrical Engineering, or related field.

·       Strong knowledge of distributed systems, operating systems, machine learning systems architecture, Inference serving, and AI Infrastructure.

·       Hands-on experience with LLM serving frameworks (e.g., vLLM, Ray Serve, TensorRT-LLM, TGI) and distributed KV cache optimization.

·       Proficiency in C/C++, with additional experience in Python for research prototyping.

·       Solid grounding in systems research methodology, distributed algorithms, and profiling tools.

·       Team-oriented mindset with effective technical communication skills.

Desired Qualifications and Experience:

·       PhD in systems, distributed computing, or large-scale AI infrastructure.

·       Publications in top-tier systems or ML conferences (NSDI, OSDI, EuroSys, SoCC, MLSys, NeurIPS, ICML, ICLR).

·       Understanding of load balancing, state management, fault tolerance, and resource scheduling in large-scale AI inference clusters.

·       Prior experience designing, deploying, and profiling high-performance cloud or AI infrastructure systems.

Company

Huaweiuk
Edinburgh, United Kingdom

Company facts come from this company's own listings. We only show what the postings themselves carry.

Sourced from Huaweiuk's careers site·first seen 7 Aug 2026·last verified 8 Sept 2026·How we source jobs

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