Verified from career page · Posted 4d ago

Ericsson

Master Thesis: A Learned World Model for Downlink Link Adaptation

Ericsson · 75 Technology & Research

Stockholm

MATLABPythonPyTorch

Last seen 2h ago

Posted
4d ago

Posted on 22 September 2026

Workplace
On-site

Work model: On-site

Salary
Not disclosed

Salary range not shared by the company

Visa sponsorship
Not specified

Visa sponsorship details unknown

Join our Team

About this opportunity:

We are seeking a talented Master's student to develop an action-conditioned world model for downlink link adaptation in AI-native 5G/6G radio access networks. The thesis will combine real radio and baseband trace data, predictive modeling, and offline reinforcement learning to investigate whether synthetic model-generated trajectories can enable safer and more sample-efficient policy training.

What you will do:

• Characterize available 5G cell and baseband trace data, including radio conditions, mobility, interference, and traffic load.

• Preprocess traces into state, action, next-state, and key-performance-indicator tuples for model training and evaluation.

• Design and train a compact latent, action-conditioned world model that predicts short-horizon throughput, block error rate, channel-quality indicator, and spectral-efficiency trajectories.

• Evaluate single-step and multi-step prediction accuracy and study how well the model separates the effect of modulation-and-coding actions from external channel variation.

• Integrate the learned world model into an offline reinforcement-learning pipeline to generate synthetic rollout data.

• Compare rule-based outer-loop link adaptation, logged-data-only offline reinforcement learning, and world-model-augmented reinforcement learning.

• If time permits, investigate calibrated uncertainty estimates to restrict policy exploration to regions where predictions are reliable.

• Document methods, results, and recommendations in the thesis report and present the work at the final defense.

• Collaborate with supervisors and radio, AI, and baseband experts to ensure technical relevance and sound evaluation.

The skills you bring:

Required Skills and Qualifications

• Enrolled in or recently admitted to a Master’s program in Electrical Engineering, Computer Engineering, Computer Science, Machine Learning, Wireless Communications, or a related field.

• Strong foundation in machine learning and data analysis.

• Programming experience in Python and familiarity with a deep-learning framework such as PyTorch.

• Basic understanding of wireless communications, radio access networks, or link-level performance metrics.

• Ability to work with time-series or sequential data and design reproducible experiments.

• Solid technical writing and communication skills.

• Independent, analytical, and collaborative problem-solving mindset.

Preferred Qualifications

• Experience with reinforcement learning, offline reinforcement learning, model-based reinforcement learning, or sequence modeling.

• Familiarity with latent dynamics models, recurrent state-space models, transformers, probabilistic models, or uncertainty estimation.

• Knowledge of 5G/6G link adaptation, modulation and coding schemes, channel-quality reporting, block error rate, or radio scheduling.

• Experience with MATLAB for signal-processing, trace preprocessing, or validation.

• Experience handling large experimental datasets, simulation traces, or performance-counter logs.

About Ericsson

Ericsson's European engineering spreads across Budapest, Stockholm, Kraków and Reading. Telecom infrastructure at global scale — Stockholm carries the founding engineering culture, Budapest and Kraków the larger current headcount.

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