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Machine Learning Engineer
ConfigUSA
- Seattle, Washington, United States
- Seattle, Washington, United States
Über
Data Analysis and Exploration: Analyze large, complex datasets to extract meaningful insights and identify trends. Perform exploratory data analysis (EDA) using AWS data processing tools. Build, train, and evaluate machine learning models using AWS services such as SageMaker, and frameworks like TensorFlow. ETL and Data Preparation: Work with AWS Glue, Redshift, Textract and other data engineering tools to preprocess, transform, and manage data for machine learning purposes. Develop end-to-end machine learning pipelines on AWS to automate and operationalize the deployment of models at scale. Work closely with data engineers, business analysts, and stakeholders to understand business needs and tailor data science solutions to meet those needs. Model Deployment and Monitoring: Deploy models to production and set up monitoring systems to track performance, accuracy, and other key metrics. Use SageMaker and Lambda for model hosting and API development. Documentation and Reporting: Document models, processes, and findings for stakeholders, enabling clear communication of results and decision support.
Technical Skills:
AWS Services: Hands-on experience with AWS SageMaker, Textract, Comprehend, Lambda, Glue, Redshift, and S3. Machine Learning and Statistical Techniques: Strong grasp of ML algorithms, statistical methods, and data science best practices.
Seniority level
Mid-Senior level
Employment type
Contract
Job function
Consulting, Information Technology, and Business Development
Industries
IT Services and IT Consulting, Business Consulting and Services, and Software Development
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Sprachkenntnisse
- English
Hinweis für Nutzer
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