Paul Almasan

Researcher at Telefónica Innovación Digital

Barcelona, Catalonia, Spain
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Summary

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Senior
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Top School
Paul Almasan is an applied AI researcher with 11 years of experience and 6+ years focused on end-to-end machine learning for wireless networks, currently developing graph neural network and digital-twin solutions at Telefónica Innovación Digital in Barcelona. He designs scalable models for radio coverage prediction as practical alternatives to ray tracing and applies generative AI to large-scale telecom datasets. His PhD work produced influential GNN-based routing and DRL architectures that attracted academic citations and open-source interest, and he has led coordination of multi-partner EU projects (INSTINCT, 6G-MIRAI). Comfortable bridging academia and industry, he mentors MSc/PhD students and has hands-on experience implementing demos, reproducible experiments, and production-ready research prototypes. An under-the-radar strength is his mix of time-series compression and spatio-temporal analysis expertise from collaborative visiting research stays, which complements his network optimization focus.
code11 years of coding experience
job3 years of employment as a software developer
bookUPC Universitat Politècnica de Catalunya
bookErasmus exchange in the Bachelor of Information Technologies program, Information Technology, Erasmus exchange in the Bachelor of Information Technologies program, Information Technology at České vysoké učení technické v Praze
languagesSpanish, Catalan, Romanian, English, Japanese, French
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Github Skills (18)

chainer9
prototyping9
graph8
5g8
reproducible-research8
communications7
pytorch7
raytracing7
machine-learning7
deep-learning7
computer-networks6
reinforcement-learning5
open-source5
machine-learning-models4
tensorflow3

Programming languages (2)

Jupyter NotebookPython

Github contributions (5)

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Contributions:29 commits, 6 PRs, 27 pushes in 1 year 2 months
BNN-UPC/ENERO

Jul 2022 - Jan 2023

Code used in the paper "ENERO: Efficient real-time WAN routing optimization with Deep Reinforcement Learning". In this paper, the DRL agent is implemented with the PPO algorithm
Contributions:15 commits, 1 PR, 14 pushes in 6 months
deep-learninggraph-neural-networksmachine-learningnetwork-embeddingreinforcement-learning
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Paul Almasan - Researcher at Telefónica Innovación Digital