333_25_CS_HPES_R0
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Data de tancament
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We are particularly interested for this role in the strengths and lived experiences of women and underrepresented groups to help us avoid perpetuating biases and oversights in science and IT research. In instances of equal merit, the incorporation of the under-represented sex will be favoured.
We promote Equity, Diversity and Inclusion, fostering an environment where each and every one of us is appreciated for who we are, regardless of our differences.
If you consider that you do not meet all the requirements, we encourage you to continue applying for the job offer. We value diversity of experiences and skills, and you could bring unique perspectives to our team.
The objective of this position is to work in the context of several European and bilateral Projects on high-performance real-time AI-based frameworks as part of a young and dynamic team researching on computer architecture (processors and accelerators), operating system support, and statistical and AI frameworks. In particular, the candidate will research and develop probabilistic and statistical analysis focused on solving the timing challenges of real-time AI-based frameworks. The current challenges involve dealing with graph-like execution time data to build probabilistic models. The candidate will also work on theoretical toy models that simplify the complex hardware which will aid the final modelling on real hardware. The candidate will be expected to propose new methodologies based on those challenges and/or improve the state-of-the-art.
The candidate is expected to have conducted his/her studies on related topics to real-time, probabilistic modelling, AI or statistical techniques. Experience is welcome but not mandatory. The candidate will join a team of several people helping him/her to familiarize with the needed tools and developments for a smooth ramp up process. This position offers the possibility to collaborate with research institutions and industry from several European locations, thus offering enriching experiences and opportunities to learn.
- Contribute to the research and application of probabilistic and statistical techniques to modelling aspects of AI-based control applications in real-time edge devices
- Develop probabilistic models for graph-like data and tools to bring insights to the analysis of complex high-performant hardware in critical systems for software specification, design, implementation, verification and validation; and the disruptive and innovative nature of deep learning software.
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Education
- Degree in Mathematics, Applied Statistics, or Physics
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Essential Knowledge and Professional Experience
- Recognized experience in statistical analysis
- Experience with Mathematical Modelling
- Experience with real-time edge AI systems
- Experience with R and Python
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Additional Knowledge and Professional Experience
- Experience in software timing analysis in commercial and academic environments
- Good communication skills including a good command of the English language (written and spoken)
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Competences
- Problem-solving, pro-active, result-oriented work attitude
- Ability to take initiative, prioritize and work under set deadlines pressure
- Ability to work independently and in a team
- The position will be located at BSC within the Computer Sciences Department
- We offer a full-time contract (37.5h/week), a good working environment, a highly stimulating environment with state-of-the-art infrastructure, flexible working hours, extensive training plan, restaurant tickets, private health insurance, support to the relocation procedures
- Duration: Open-ended contract due to technical and scientific activities linked to the project and budget duration
- Holidays: 23 paid vacation days plus 24th and 31st of December per our collective agreement
- Salary: we offer a competitive salary commensurate with the qualifications and experience of the candidate and according to the cost of living in Barcelona
- Starting date: 01/06/2025
- A full CV in English including contact details
- A cover/motivation letter with a statement of interest in English, clearly specifying for which specific area and topics the applicant wishes to be considered. Additionally, two references for further contacts must be included. Applications without this document will not be considered.
Development of the recruitment process
The selection will be carried out through a competitive examination system ("Concurso-Oposición"). The recruitment process consists of two phases:
- Curriculum Analysis: Evaluation of previous experience and/or scientific history, degree, training, and other professional information relevant to the position. - 40 points
- Interview phase: The highest-rated candidates at the curriculum level will be invited to the interview phase, conducted by the corresponding department and Human Resources. In this phase, technical competencies, knowledge, skills, and professional experience related to the position, as well as the required personal competencies, will be evaluated. - 60 points. A minimum of 30 points out of 60 must be obtained to be eligible for the position.
The recruitment panel will be composed of at least three people, ensuring at least 25% representation of women.
In accordance with OTM-R principles, a gender-balanced recruitment panel is formed for each vacancy at the beginning of the process. After reviewing the content of the applications, the panel will begin the interviews, with at least one technical and one administrative interview. At a minimum, a personality questionnaire as well as a technical exercise will be conducted during the process.
The panel will make a final decision, and all individuals who participated in the interview phase will receive feedback with details on the acceptance or rejection of their profile.
At BSC, we seek continuous improvement in our recruitment processes. For any suggestions or comments/complaints about our recruitment processes, please contact recruitment [at] bsc [dot] es.
For more information, please follow this link.
BSC-CNS is an equal opportunity employer committed to diversity and inclusion. We are pleased to consider all qualified applicants for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, age, disability or any other basis protected by applicable state or local law.
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