Datu zinātnieks / Data Scientist (Risk and fraud detection/ML)
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Requirements
- A university degree in a numerical field (Machine Learning, Statistics, Mathematics, Computer Science, Physics, Engineering, etc.).
- 4+ years of work experience in Data Science, Machine Learning or related field.
- Strong expertise in ML techniques (supervised/unsupervised learning, deep learning, NLP, etc.).
- Solid foundation in linear algebra, statistics, and probabilistic modeling.
- Fluent in Python, SQL, and Python ML libraries such as Scikit-Learn and PyTorch.
- Excellent communication skills (fluent English) and a problem-solving mindset.
- Passion for staying updated on the latest AI/ML trends and technologies.
- Experience with Scala or Java .
- Familiarity with Big data processing frameworks such as Spark , Athena , ClickHouse .
- Experience with deploying ML solutions to production.
- Experience with AWS or other cloud providers.
Benefits
Additional Information
We're looking for a talented Data Scientis t to join our Data Science team, where you'll design and develop machine learning solutions to enhance risk assessment and fraud detection. I n this role, you'll leverage data-driven insights to build robust models, collaborate with cross-functional teams, and deploy scalable solutions that drive real-world impact. Main Duties & Responsibilities: Develop and optimize machine learning models for fraud detection and risk assessment. Partner with business and technical stakeholders to identify the best ML approaches for real-world challenges. Work closely with data engineers to source, preprocess, and structure high-quality datasets. Define performance metrics and evaluation frameworks to measure model effectiveness. Continuously train, test, monitor and refine models to ensure accuracy and scalability. Collaborate with team members to deploy machine learning models to production environments. Extend and optimize existing ML libraries and frameworks as needed.
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Company Intel
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