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Urgent! AI/ML models for flow scheduling problem Job Opening In Massy – Now Hiring Nokia
Join us in creating the technology that helps the world act together
We are a B2B technology innovation leader pioneering the future where networks meet cloud.
At Nokia you will have a positive impact on people’s lives and help build the capabilities needed for a more productive, sustainable, and accessible world.
Be part of a culture built on an inclusive way of working where we are open to your ideas, you are empowered to take risks and are encouraged to be fearless in bringing your authentic self to work.
The team you'll be part of
Nokia Bell Labs is the world-renowned research arm of Nokia, having invented many of the foundational technologies that underpin information and communications networks and all digital devices and systems.
This research has produced nine Nobel Prizes, five Turing Awards and numerous other awards.
Our research department involves 12 highly skilled researchers in France in US.
In multi-cultural environment your work will contribute to solve the delay problem.
We have proposed the concept of Strict Deterministic Networks (St-DetNet), a packet network technology that delivers data within strict deadlines over IP/Ethernet networks.
A St-DetNet schedules data frames in periodic deterministic streams, avoiding buffering processes as much as possible.
And in cases where buffering cannot be avoided, it ensures that the corresponding delays are known exactly in advance.
In short, the position of each data frame in the network is known exactly at each clock cycle.
On a network made up of several nodes, the design of a St-DetNet solution requires the complete specification of the time steps at which each data frame passes through each node.
This flow scheduling problem is unfortunately NP-hard and can therefore only be solved perfectly for small instances.
However, based on a limited number of experiments, we believe that AI/ML models may be able to infer relevant solutions.
The objective of this internship is to develop, experiment with and compare several AI/ML models for this flow scheduling problem.
ML methods will then learn to construct scheduled data flows for different network topologies and strict time constraints.
Several approaches are available, for example: graph neural networks (GNNs) and large language models (LLMs).
In the first case, which is the most natural, a GNN would be designed to learn programmed data streams based on graphical descriptions of input networks and time constraints.
In the second case, the scheduling problem would be reformulated textually - with the task description given as a prompt and the problem instance encoded as a string - and then passed to an LLM with the aim of learning the admissible scheduled data streams.
What you will learn and contribute
Are you passionate about problem solving?
As a member of our team, you will learn new concepts such as deterministic networks,
implement the most advanced Machine Learning techniques on industrial use cases
Your skills and experience
Solid experience in ML and neural networks
Good programming skills, preferably in Python: experience with neural network libraries such as PyTorch, Tensorflow or Keras is highly recommended.
It would be great if you also had knowledge of operations research, optimisation techniques and previous experience of scheduling problems would be a real advantage.
What we offer
Nokia offers flexible and hybrid working schemes, continuous learning opportunities, well-being programs to support you mentally and physically, opportunities to join and get supported by employee resource groups, mentoring programs and highly diverse teams with an inclusive culture where people thrive and are empowered.
Nokia is committed to inclusion and is an equal opportunity employer
Nokia has received the following recognitions for its commitment to inclusion & equality:
✨ Smart • Intelligent • Private • Secure
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Unlock Your AI ML Potential: Insight & Career Growth Guide
Real-time AI ML Jobs Trends in Massy, France (Graphical Representation)
Explore profound insights with Expertini's real-time, in-depth analysis, showcased through the graph below. This graph displays the job market trends for AI ML in Massy, France using a bar chart to represent the number of jobs available and a trend line to illustrate the trend over time. Specifically, the graph shows 518 jobs in France and 2 jobs in Massy. This comprehensive analysis highlights market share and opportunities for professionals in AI ML roles. These dynamic trends provide a better understanding of the job market landscape in these regions.
Great news! Nokia is currently hiring and seeking a AI/ML models for flow scheduling problem to join their team. Feel free to download the job details.
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An organization's rules and standards set how people should be treated in the office and how different situations should be handled. The work culture at Nokia adheres to the cultural norms as outlined by Expertini.
The fundamental ethical values are:The average salary range for a AI/ML models for flow scheduling problem Jobs France varies, but the pay scale is rated "Standard" in Massy. Salary levels may vary depending on your industry, experience, and skills. It's essential to research and negotiate effectively. We advise reading the full job specification before proceeding with the application to understand the salary package.
Key qualifications for AI/ML models for flow scheduling problem typically include Supervisors Of Food Preparation And Serving Workers and a list of qualifications and expertise as mentioned in the job specification. Be sure to check the specific job listing for detailed requirements and qualifications.
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Here are some tips to help you prepare for and ace your job interview:
Before the Interview:To prepare for your AI/ML models for flow scheduling problem interview at Nokia, research the company, understand the job requirements, and practice common interview questions.
Highlight your leadership skills, achievements, and strategic thinking abilities. Be prepared to discuss your experience with HR, including your approach to meeting targets as a team player. Additionally, review the Nokia's products or services and be prepared to discuss how you can contribute to their success.
By following these tips, you can increase your chances of making a positive impression and landing the job!
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