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Ericsson | Stockholm, Stockholm County, Sweden | Salary not specified
Source: JobsPipe
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Role snapshot
Join our Team About this opportunity: Ericsson Research’s Artificial Intelligence Research Area combines machine learning and reasoning to enable intelligent, autonomous operations in complex telecom systems. We are looking for a motivated student to study Latent Neural-Operator Structural Causal Models. Causal representation learning asks whether hidden causal variables can be recovered from observed measurements. Existing theory often assumes scalar variables and unstructured mixing. In physical systems, causal variables may instead be functions defined on different domains, while the measurement process has known structure. A radio link is a clear example. Channel response, interference, and the equalised constellation are function-valued and not directly observable. Receiver IQ samples and channel estimates combine them with hardware impairments and transmitter choices. This project will study a latent structural causal model for such systems. Function-valued latent variables are connected through operator mechanisms, while the measurement chain links latent structure to observed data. The structure is known, the mechanisms are not, and system actions are logged with known targets. The thesis will assess whether the recovered latent structure is meaningful, not merely whether it reconstructs measurements. Two criteria will be evaluated:
You will implement the framework in a link-level simulator with known ground truth and compare it with causal representation learning baselines. Negative results are valid outcomes; showing that the latent structure is not meaningful or that the graph provides no benefit is also valuable. What you will do:
The skills you bring:
We expect an analytical, research-oriented mindset, the ability to learn quickly, and the initiative to identify problems and solutions.
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Application checklist
A quick checklist to help candidates submit a clearer, more complete application.
Read resource