Are you a currently enrolled student with a strong interest in Deep Learning 
for Sequential models, at the Master or PhD level? NAVER Labs Europe (NLE) is 
opening an exciting internship on Prior Knowledge for Training Neural Seq2Seq 
Models.

 

NLE is the largest AI research center in France, located in Grenoble.

 

For more information and application procedure, please visit the link:

http://www.europe.naverlabs.com/NAVER-LABS-Europe/Internships/Prior-Knowledge-for-Training-Neural-Seq2Seq-Models
 

 

 

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Prior Knowledge for Training Neural Seq2Seq Models
 

NAVER LABS Europe (NLE) is opening a research internship with the goal of 
advancing the use of prior knowledge for training neural seq2seq models. 

When training data is scarce, as is often the case in practice, standard 
end-to-end training of sequential models tends to produce mediocre results; 
however, it is often the case that the developer of such models is aware of 
structural biases and global characteristics of candidates that could be 
exploited to better generalize from the available direct observations.

We are looking for a motivated intern to join an ongoing research project 
addressing this general problem, both in theory and in practice. The 
experiments will be conducted both on synthetic data, for permitting a 
fine-grained and flexible exploration of different parameters of the problem, 
as well as on natural data (e.g. NLG, MT), for validating the usefulness of the 
techniques.

The successful candidate should be enrolled in a graduate program, at the 
Master or (preferably) PhD level, with a focus on Deep Learning (knowledge of 
NLP and RL a plus).

Strong mathematical and programming skills as well as familiarity with one of 
the major current deep learning toolkits (PyTorch preferred but not compulsory) 
 are a requirement.

 

Publication of results in major conferences/journals will be strongly 
encouraged.
Start Date
Early 2019
Duration
5-6 months
Application instructions
To apply, please send a mail and CV to Marc Dymetman 
(marc.dymet...@naverlabs.com) and Jean-Marc Andreoli 
(jean-marc.andre...@naverlabs.com).

 

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