Applied AI Researcher – Foundation Models Remote at Translated
Translated

Applied AI Researcher - Foundation Models

Translated Roma, LAZ, IT
Full-time Posted 12 days ago

Responsibilities

  • check_circle design and conduct research on Large Language Model pre-training
  • check_circle design experiments, implement them in code, run them at scale, and analyze their results
  • check_circle investigate model architectures, optimization strategies, training dynamics, and scaling behavior
  • check_circle research and develop multilingual training strategies
  • check_circle work on data selection, quality, composition, and data mixture experiments for LLM pre-training
  • check_circle evaluate models across multilingual and general-purpose benchmarks
  • check_circle monitor and benchmark the state of the art in Large Language Models
  • check_circle run experiments on large-scale GPU and HPC infrastructure
  • check_circle translate research hypotheses into measurable experiments and actionable decisions for large-scale training

Basic qualifications

  • 3+ years of research/industry experience in a relevant area of Deep Learning, Machine Learning, Natural Language Processing, or Large Language Models
  • strong understanding of modern deep learning and Transformer-based language models
  • excellent programming skills in Python
  • experience designing and running machine learning experiments
  • familiarity with GPU-based training environments and Unix/Linux systems
  • ability to analyze experimental results and make research decisions based on empirical evidence
  • interest in large-scale experimental research and language model pre-training
  • ability to follow, understand, and reproduce recent scientific literature
  • excellent written and spoken English
  • ability to work effectively with both researchers and engineers
  • you have direct experience pre-training or continuing the pre-training of Large Language Models
  • you have experience with distributed and multi-GPU training
  • you have worked with large-scale training frameworks such as Megatron Bridge
  • you have experience optimizing GPU utilization, throughput, memory consumption, or large-scale training stability
  • you have worked on multilingual NLP or multilingual language models
  • you have experience with large-scale dataset curation, filtering, deduplication, or data mixture design
  • you have experience with LLM evaluation and benchmarking
  • you have experience working with HPC environments

About the company

  • check_circle large-scale language model pre-training
  • check_circle multilingual language modeling
  • check_circle data curation, filtering, scoring, and mixture design
  • check_circle scaling laws and training dynamics
  • check_circle model architecture and optimization
  • check_circle distributed and multi-GPU training
  • check_circle evaluation and benchmarking of Large Language Models
  • check_circle continued pre-training and mid-training strategies

Tags & Focus Areas

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