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A leading advertising technology firm in Paris seeks a head of data Science to lead and manage a team of Data Scientists and Machine Learning Engineers. The role involves designing high-performance architectures and working collaboratively with cross-functional teams to build cutting-edge solutions. Ideal candidates will hold a Master's degree in a technical field, possess strong experience in data science frameworks, and be proficient in Python and machine learning environments. Fluent English is required, and French is a plus.
At Equativ, we’re on a mission to develop advertising technologies that empower our customers to reach their digital business goals. This means that we rely on massively scalable, widely distributed, highly available, and efficient software systems; the platform deals with over 3 millions requests per second managed by 3,000 servers.Our innovation team based in Paris, Nantes, Limoges, Krakow and Berlin is composed of 150+ straightforward and energetic engineers working in an Agile environment and ready to tackle the most complex technical challenges.
Your mission
Within the R&D team, we build a global advertising platform allowing the delivery ofbillions of ads daily using real time bidding. This pipeline heavily relies on machine learning models that allow lower costs, higher revenues, better targeted ads and more. Our data-science teams are based in Paris and are responsible for designing awesome deep-learning algorithms to make our products smarter. We train our models in Google Cloud Platform with billions of logs, and serve them in our own data centers. We use Google Dataflow, Cloud Run and Tensorflow. Our neural networks generate 300k predictions per second, each prediction processed in less than 2 ms. We work on all kinds of machine learning problems (classification / regressions, time series, NLP, recommendation, reinforcement learning...).As head of data Science, you will be responsible for the overall design, availability and performance of both the learning pipeline and the use of models in the delivery engines. You will manage a team of 10+ Data Scientists and Machine Learning Engineers and closely interact with Business, Product, Data Engineering, Back End teams …