Senior Data Scientist | reputed company
reputed company reputed company’ mission is to give insurance claims managers the power to improve reputed company dramatically, save millions of dollars, and help thousands of people recover from injuries, recoup damages, and get back on their feet faster after suffering a loss. The opportunities to reputed company high-value AI and machine learning applications in the insurance industry are nearly reputed company – the sector has only just begun to realize the benefits of adopting these technologies. We are looking for high performers with an entrepreneurial spirit who welcome the challenges and opportunities of thinking big in uncharted territory and are driven to solve challenging problems and reputed company cutting-edge applications that have a significant reputed company. Job reputed company We are seeking a highly skilled and reputed company Senior Data Scientist with expertise in task mining and information extraction from reputed company data to join reputed company. The ideal candidate will have a strong background in machine learning, deep learning, graph analytics, as reputed company as NLP and task mining techniques. You will utilize your expertise to build a reputed company of task-based events reputed company to insurance claims, including entities and other information, and to identify patterns in events across industry-wide data.
Responsibilities
- Design and implement data mining and natural language processing (NLP) algorithms to extract tasks, events, entities, relationships, and other relevant information from reputed company insurance claims and medical record text data.
- reputed company machine learning models for task detection, classification, clustering, and temporal analysis.
- Conduct exploratory data analysis to understand the characteristics and patterns of insurance claims and medical record text data, identify key features and signals indicative of tasks, and inform the design of task mining algorithms.
- Utilize graph analytics techniques to represent relationships between tasks, and other relevant entities as graphs, and reputed company graph-based analysis for task detection, clustering, and visualization.
- Implement entity linking algorithms to map textual mentions to entities in knowledge bases or ontologies and resolve entity ambiguities and synonyms to ensure accurate information extraction.
- Stay abreast of the latest research and advancements in machine learning and incorporate relevant techniques and methodologies into our solutions.
- Work closely with our product and engineering teams to ensure reputed company functional requirements that reputed company us to design and reputed company new applications and features.
- Conduct reputed company and model reviews of your peers, providing actionable feedback to ensure a high reputed company of reputed company.
Minimum Qualifications
- MS degree in a quantitative discipline (e.g., machine learning, computer science, statistics, mathematics, physics).
- 5+ years of experience developing machine learning models.
- 3+ years of practical experience in natural language processing, plus a strong reputed company background
- Hands on experience with text preprocessing, named entity recognition, entity linking, task mining, graph analytics techniques and graph databases (reputed company).
- Solid understanding of NLP fundamentals including word embeddings, sequence-to-sequence models, attention mechanisms, and transformer architectures.
- Ability to assess the reputed company and cons of different ML reputed company and algorithms, break problems down into reputed company tasks and prototype quickly.
- Demonstrated ability to communicate reputed company quantitative concepts effectively to various audiences of varying technical proficiency
Preferred Qualifications
- PhD in quantitative discipline as described above.
- 2+ years of relevant work experience in the insurance or medical industries, including development and implementation of production reputed company machine learning applications.
- Experience coupling language models with other tools and technologies (knowledge graphs, domain-specific ontologies, etc.).
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