Job offer: Expert in Artificial Intelligence / Natural Language Processing / 
Machine Learning at the European Commission's eTranslation NLP Project

Are you excited about the vast new possibilities in applying AI to natural 
language processing?
Would you like to work for the European Union and help us tear down language 
barriers for millions of people?
Do you already have relevant expertise in AI / NLP / ML?

The European Commission's eTranslation NLP project 
(https://language-tools.ec.europa.eu/) is currently offering you an exciting 
opportunity with impact and purpose. More details can be found in the job 
description below.

Please note: The position is open to any nationality and any level of 
experience (with a minimum of five years of relevant university studies). Pay 
will be commensurate with experience. Employment will be through an IT company 
rather than by the European Commission directly. Remote work will be possible 
within the legal framework (details are to be agreed upon with the employer). 
The position will be open until filled.

Contacts:
Michael Jellinghaus 
([email protected]<mailto:[email protected]>)
Andreas Eisele ([email protected]<mailto:[email protected]>)


THE TEAM

We are the sector working on machine translation and other forms of natural 
language processing (NLP), within the information technology unit at the 
European Commission’s Directorate General for Translation (DGT), the world’s 
largest translation service. We build and run the eTranslation machine 
translation service, a flagship artificial intelligence project for the 
European Institutions that is also available to a broad range of external users 
everywhere in Europe. eTranslation plays a key role as an enabler of 
multilingualism in Europe, as a public service that facilitates multilingual 
communication in many different contexts, including on online platforms such as 
the Conference on the Future of Europe website or in difficult situations such 
as the influx of refugees in the context of the Ukrainian crisis.

In addition to machine translation, we also provide services for other forms of 
natural language processing, including speech transcription, document 
classification, named entity recognition, and anonymization, and we continue to 
add new NLP services. We use AI techniques involving deep learning approaches 
and tools to train our own models, with large volumes of both internal and 
external data, or to deploy open-source pre-trained models. We work in a cloud 
environment, in Azure, and use infrastructure-as-a-service (IaaS) and 
platform-as-a-service (PaaS) cloud services to develop and deliver our services 
to our internal and external users. We also carry out special projects 
involving the use of supercomputing/HPC resources for research and development 
relating to our services.

THE JOB

• Exploration of ways to use large language models (LLMs) and other types of 
artificial intelligence (AI) technology to build natural language processing 
(NLP) applications;
• Design, implementation, and evaluation of AI-based NLP applications, 
including but not limited to machine translation (MT) engines;
• Definition of criteria for quality evaluation applicable to the datasets used 
to build NLP applications, concerning both the training data and the test data 
sets.
• Application of advanced data analysis and machine learning techniques, 
including "deep learning" based on neural models, to MT-related tasks, 
including, but not limited to domain adaptation;
• Development and maintenance of methods and software to identify useful 
subsets of existing corpora, filtering out the unwanted parts, using 
combinations of machine learning approaches with explicit (symbolic) rules.
• Acquisition and management of data sources that are helpful to improve MT 
performance and quality, such as parallel, comparable, and monolingual corpora 
(including data crawled from the Web or artificial parallel corpora via 
back-translation);
• Acquisition and management of data sources for building improved pre- and 
post-processing tools (e.g. morphological and syntactic analysis, re-ordering, 
re-scoring, quality estimation);
• Acquisition and management of data sources for building or improving AI-based 
NLP applications other than MT engines;
• Consulting the development team on integrating these additional data sources 
into a working solution on a software level;
• Consulting on quality improvements; assessing the impact of changes to the 
NLP applications onoutput quality and other performance criteria;
• Participation in functional working groups and progress meetings;
• Participation in scientific conferences and workshops related to Artificial 
Intelligence, Natural Language Processing, Machine Translation and underlying 
technologies;
• Contribution to and analysis of implementations made to cover specific needs 
of customers, for example through the creation of domain-specific MT engines or 
specific algorithms;
• Analysis of benefits and risks of such changes concerning the overall quality 
of the eTranslation service.
• Interaction with the business analysts, customer, users, project leaders and 
the developers

THE REQUIREMENTS

• An advanced university degree in data-driven computational linguistics, 
machine learning, artificial intelligence, data mining, or statistical data 
modelling, including familiarity with data-driven techniques for natural 
language processing, such as statistical / neural MT, or equivalent experience
• Very good knowledge and professional experience in the area of artificial 
intelligence or natural language processing
• In-depth knowledge of setting up and evaluating NLP software, including 
testing methodologies and tools, such as automatic quality metrics (e.g., BLEU 
scores and similar for MT) and human evaluation of output quality
• In-depth knowledge and experience with programming languages used for text 
processing (e.g. Python)
• Ability to implement prototypical solutions efficiently and fast and to 
evaluate them on very large amounts of textual data
• Ability to give business and technical presentations
• Ability to apply high quality standards
• Ability to cope with fast changing technologies used in NLP, MT, and machine 
learning
• Very good communication skills with technical and non-technical audiences
• Analysis and problem-solving skills
• Capability to write clear and structured technical documents
• Ability to participate in technical meetings and good communication skills

Due to the particular nature of a large international organisation such as the 
European Commission, candidates should also have the following non-technical 
skills:
• Capability of integration in an international/multicultural environment, 
rapid self-starting capability and experience in working in team;
• Ability to participate in multilingual meetings;
• Ability to work in multi-cultural environment, on multiple large projects;
• Excellent Team Player
• Ability to understand, speak and write EU languages beyond English will be an 
advantage;
• High degree of discretion and integrity is required as the applications 
managed and maintained in DGT R.3 contain personal and confidential data

#job #ai #nlp #artificialintelligence #naturallanguageprocessing 
#machinelearning #languagetechnology #machinetranslation #deeplearning 
#datascience #langtech #neuralnetworks #largelanguagemodel #supercomputer 
#cloudcomputing #mt #nmt #llm #hpc #etranslation #europeancommission 
#workfortheEU #europeanunion #dgt #luxembourg

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