2026 - Principal Personalization and Recommendation Researcher - Permanent

Huawei Ireland Research Center

Dublin

On-site

EUR 85,000 - 120,000

Full time

14 days+
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Benefits offered by this job

Collaborative research environment
Opportunity to impact product direction

Job summary

Huawei Ireland Research Center seeks a Principal Researcher in Personalization and Recommendation to lead research on next-generation systems. You will work on generative recommendation models, contributing to technical roadmaps and mentoring team members.

The role requires a PhD or Master’s with extensive AI experience, and offers an engaging environment collaborating with engineers and product teams. Join us to shape the future of personalization at Huawei!

Qualifications

  • PhD preferred, or Master’s degree with strong research and industrial experience.
  • 6+ years in machine learning, recommender systems, or large-scale modelling.
  • Experience designing and debugging large-scale ML models.

Responsibilities

  • Lead research workstreams for next-generation personalization systems.
  • Design and evaluate generative recommendation models.
  • Collaborate with research and engineering teams to ensure scalability.

Skills

Machine learning
Recommender systems
Large-scale user behaviour modelling
Transformers
Statistical significance

Education

PhD in Computer Science or related field
Master’s with strong research experience

Tools

PyTorch
TensorFlow
JAX

Job description

Location: Dublin, Ireland

About Huawei

Huawei’s products and services are available in more than 170 countries and are used by a third of the world’s population. Huawei Consumer Business Group (CBG) is one of Huawei’s three business units and covers smartphones, PCs and tablets, wearables and cloud services, etc. Huawei Mobile Services (HMS) is part of CBG and develops new cloud services offered free of charge to Huawei mobile device users.

HMS ecosystem is now the third largest ecosystem in the world with more than 96,000 global apps integrated with HMS Core. HMS Apps continues to launch globally, with content apps such as HUAWEI Music, HUAWEI Video, HUAWEI Themes, HUAWEI Reader and HUAWEI Game Center taking centre stage in various countries and regions.

About the IRC

Huawei Ireland Research Centre's (IRC) mission is to position Huawei as a recognized technology leader and global information and communications technology (ICT) solutions provider. To achieve this we are building an industry‑recognised multi‑discipline Research Centre of experts focusing on medium‑term to long‑term issues.

The IRC will work closely with an open innovative ecosystem with Huawei customers to address real‑world issues. The IRC will also engage with key European universities to build a basic research capability to support Huawei technical projects.

About the Job

As a Principal Researcher in Personalization and Recommendation at Huawei Ireland Research Centre, you will lead major research workstreams in next‑generation personalization and recommendation systems.

The role sits at the intersection of recommender systems research, large‑scale sequential modelling, and industrial personalization. You will work on systems that model user behaviour across rich interaction streams, learn robust item and event representations, and support high‑quality personalised experiences across different domains and product scenarios.

A central part of the role will be to contribute to Huawei’s roadmap in generative recommendation and next‑generation personalization. This includes semantic ID representations, transformer‑based sequential recommendation, efficient attention for long sequences, unified recall and ranking architectures, and principled evaluation of large‑scale recommendation models.

We are looking for a senior researcher who combines hands‑on modelling experience with strong technical judgment. The successful candidate will own important research workstreams, contribute to technical direction, mentor team members, and translate promising ideas into production‑relevant systems.

Responsibilities
  • Lead research workstreams for next‑generation personalization and recommendation systems, with a focus on generative recommendation, large‑scale sequential modelling, and unified recall and ranking.
  • Design, develop, and evaluate generative recommendation models that treat recommendation as sequence modelling over user events, items, actions, or semantic identifiers.
  • Develop and evaluate semantic ID representations, including hierarchical, non‑hierarchical, graph‑informed, and learned tokenisation approaches.
  • Investigate long‑sequence recommendation models capable of using rich user histories and device event streams.
  • Explore efficient attention mechanisms and scalable transformer architectures for long‑context recommendation.
  • Study scaling behaviour in recommendation models, including the relationship between model size, data size, sequence length, and downstream performance.
  • Contribute to the technical roadmap for large‑scale personalization and recommendation systems.
  • Translate research ideas into production‑relevant models, prototypes, technical reports, patents, and deployment proposals.
  • Design rigorous offline and online evaluations, including ranking metrics, retrieval metrics, calibration, latency, throughput, robustness, and business impact.
  • Collaborate with research, engineering, product, and international teams to ensure solutions are scalable, robust, and aligned with product objectives.
  • Mentor researchers and engineers, promote technical best practices, and contribute to publications, patents, technical reports, and external research engagement where appropriate.
Requirements
  • PhD preferred, or Master’s degree with strong research and industrial experience, in Computer Science, Mathematics, Statistics, Machine Learning, or a related quantitative field.
  • 6 or more years of experience in machine learning, recommender systems, search, ranking, personalization, or large‑scale user behaviour modelling.
  • Strong hands‑on experience in one or more of the following areas: sequential recommendation, retrieval, ranking, user behaviour modelling, transformer‑based recommendation, multi‑task learning, multi‑objective optimisation, reinforcement learning, bandits, multimodal recommendation, or cross‑domain recommendation.
  • Strong understanding of modern recommendation architectures, including deep retrieval, ranking models, two‑tower models, sequence models, transformers, GNNs, and representation learning.
  • Experience designing, training, evaluating, and debugging large‑scale ML models in production or production‑adjacent environments.
  • Strong knowledge of recommendation evaluation, including offline metrics, online experimentation, A/B testing, calibration, statistical significance, and business metric alignment.
  • Ability to connect research questions to practical impact in complex industrial systems.
  • Experience with large‑scale ML frameworks such as PyTorch, TensorFlow, JAX, or equivalent systems.
  • Strong communication skills and demonstrated ability to work across research, engineering, and product teams.
Preferred Qualifications
  • Research or industrial experience in generative recommendation, semantic IDs, long sequence modelling, efficient attention, or foundation models for recommendation.
  • Experience contributing to unified recommendation architectures across retrieval and ranking.
  • Experience with personalization systems across multiple domains, modalities, or product surfaces.
  • Experience studying scaling laws, model capacity, sequence length, or data scaling in recommendation systems.
  • Publications in leading venues such as RecSys, KDD, WWW, WSDM, SIGIR, ICML, NeurIPS, ICLR, or related conferences.
What We Offer
  • The opportunity to work on strategic recommender systems research with direct relevance to Huawei's global products and ecosystem.
  • A role with both research depth and practical impact, connecting frontier recommender systems ideas to large‑scale industrial systems.
  • A collaborative research environment involving scientists, engineers, product teams, and academic partners.
  • The opportunity to help define the technical direction of generative recommendation and next‑generation personalization at Huawei Ireland Research Centre.
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