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About the company for Stolt Nielsen:
Stolt-Nielsen is a family-founded global leader in bulk-liquid and chemical logistics, transportation, and storage, known for its commitment to safety, service excellence, and innovation. At the Stolt-Nielsen Digital Innovation Centre, we bring this legacy into the future — building smarter systems, driving digital transformation, and shaping what's next for the world of logistics. Here, you're encouraged to think boldly, challenge convention, and help move today's products toward tomorrow's possibilities.
About the Role:
We are seeking a Senior Data Scientist with a passion for solving complex problems using data, AI, and automation. In this role, you will design, develop, and deploy predictive and analytical models using Python, pandas, scikit-learn, OpenCV, and AutoML frameworks — all within a Databricks environment powered by the Mosaic ML stack.
You'll work at the intersection of analytics, AI, and engineering to turn data into insights and intelligence that drive business outcomes.
At Stolt-Nielsen, we take Digital seriously. We invest in our teams through training and mentoring and enable them with the required tools to work in a modern way. As we are further building up our engineering practice, there is ample room for you to contribute, take initiative and shape the future of our ways of working and technology landscape.
What You'll Do:
What You'll Bring:
Must Have Skills:
Job ID: 149017809
Skills:
Sql, Regression Analysis, Python, Time-series modeling, R, Bayesian modeling, Pricing analytics, Statistical modeling techniques, Generative AI
Skills:
Gcp, XGBoost, Databricks, Python, Sql, AWS, Scikit-learn, MLFlow
Skills:
Kafka, Spring Boot, Tensorflow, Nlp, Pytorch, Docker, Python, Hadoop, Sql, Big Data Technologies, Django, Azure ML, Hive, MLops, Spark, FastAPI, Rest Apis, Kubernetes, Computer Vision, scikit-learn, Hugging Face, CI CD, CNNs, web backend integration, GCP AI Platform, Vision Transformers, Generative AI, LLMs, cloud platforms, AWS SageMaker, Transformers, RAG, ML frameworks
Skills:
data preparation , snowflake , Unix, Random Forest, Neural Networks, Shell scripting, Python, Boosting and bagging methods, Ensemble models, ML libraries, Regression, Advanced ML techniques, Feature engineering, GBM, supervised learning, Distributed data systems, ML pipelines
Skills:
data engineering , Spotfire, Machine Learning, Power Bi, Tableau, Sql, MLops, Databricks, Predictive Analytics, Python, Generative AI, Ai, semantic search, Statistical Modeling
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