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Cloud & Big Data Integration: Lead the migration and integration of data systems to cloud environments (AWS, Azure, GCP) and implement big data solutions as needed for advanced analytics and reporting.
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Apache Hadoop or Apache Spark (for big data processing) The Data Scientist will be responsible for driving insights from the vast amounts of patient and environmental data available within our data warehouse.
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Data Scientist (Healthcare) 100% Remote. Data Warehousing (e.g., AWS Redshift, Google BigQuery) Natural Language Processing (NLP) Tools and Frameworks (e.g., Hugging Face, AWS Comprehend Medical for extracting insights from clinical text data.
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Docker, Kubernetes, ECS, EKS or AWS Fargate (for containerization and orchestration of data applications and reproducibility) Data Visualization Tools (e.g., Tableau, Power BI, Plotly) HIPAA Compliance (handling sensitive patient data securely.
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Data Privacy (understanding of privacy laws such as HIPAA, GDPR) Work closely with researcher teams to design analysis specifications, including input data specifications, data cleaning, algorithms, and interpretation of results.
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Data Science & Machine Learning Frameworks. Python (for preprocessing, data analysis, machine learning, scripting) Data Governance & Security. Develop and implement algorithms on existing data warehouse records and identify new external data sources to be ingested to the data warehouse to strengthen analyses.
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Research and implement AI algorithms, apply off-the-shelf AI and data-centric tools, and collect, store, and maintain data. Auditing & Compliance Tools (for ensuring secure and compliant data handling.
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SAS (common in healthcare data analysis) Data Anonymization or De-identification techniques (for research and compliance) XGBoost or LightGBM (for gradient boosting in structured data.
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Data Tools & Platforms. Clinical Terminologies (e.g., SNOMED, LOINC) Natural Language Processing (NLP) (for analyzing clinical notes or electronic health records) TensorFlow, PyTorch, Keras (for deep learning and complex machine learning, including neural networks and advanced AI.
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ETL Tools (e.g., Informatica, Talend, AWS Glue) AWS SageMaker (for end-to-end machine learning development, training and scalable machine learning in a managed cloud enviornment) Bachelors Degree computer science, artificial intelligence, informatics or closely related field.
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AWS Bedrock (for accessing pre-trained LLMs and foundation models without managing infrastructure) Experience with Epic or Cerner (popular EHR systems in healthcare) AWS, Google Cloud, or Azure (cloud platforms for scalable computing.
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SQL-based Databases (e.g., PostgreSQL, MySQL, Microsoft SQL Server) ICD-10 Coding (for medical diagnosis and procedure classification) HL7 (Health Level Seven International standards for electronic health information exchange.
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Electronic Health Records (EHR) Systems. Predictive Modeling (for patient outcomes, risk analysis) NoSQL Databases (e.g., MongoDB, Cassandra) The successful candidate will have demonstrated competence in developing highly scalable artificial intelligence systems with multiple dependencies across teams.
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R (for statistical computing and bioinformatics) CI/CD Pipelines (for automating deployment and monitoring of machine learning models) MATLAB (for algorithm development, though less common in healthcare.
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Experience with machine learning and statistical analyses are needed. AWS Lambda and Step Functions (serverless computing and workflow automation) Dimensionality Reduction (e.g., Principal Component Analysis (PCA.
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big data jobs Title: data scientist Company: Verizon in AZ, France
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