Data Scientist - Vancouver, Canada - Providence Healthcare

Providence Healthcare
Providence Healthcare
Verified Company
Vancouver, Canada

1 month ago

Sophia Lee

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Sophia Lee

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Description

Article Flag:

Mandatory Vaccination Please Note:

As per the current Public Health Orders (Long Term Care/Seniors Assisted Living Provincial Health Order and the Health Sector Order), as of October 26, 2021, all employees working for Providence Health Care must be fully vaccinated against COVID-19.

Proof of vaccination status will be required.


Summary:


Reporting to the Technical Manager, Emergent Technologies, the Data Scientist analyzes structured and unstructured data, models complex problems, and identifies opportunities for process and product optimization by using statistical, algorithmic, mining, and visual techniques.

This role develops machine learning (ML) predictive and prescriptive analytics models through the innovative understanding and use of large data sets and the verification of effectiveness to improve clinical processes and patient outcomes.

The Data Scientist supports Providence Health Care (PHC) strategic priorities by understanding the clinical, financial, and operational issues to be solved and working closely with stakeholders, clinical and technical experts, and functional teams to leverage knowledge, interpret outputs, deploy solutions, and provide actionable insights.

The role also serves a key role in developing a solid and sustainable machine learning foundation and competency for PHC.


Qualifications / Skills and Education:

Education

A Masters' Degree in Mathematics, Statistics, Computer Science, Engineering or other quantitative degree is required plus five (5) to seven (7) years' experience working with large datasets and machine learning models including experience using statistical and data mining techniques, and distributed data/computing tools; writing computer code; querying databases; and using statistical computer languages.


Skills and Abilities

  • Thorough knowledge of the principles, processes, procedures, and methods involved in data mining, data analysis, statistical methods, and machine learning.
  • Demonstrated skills in AI product design and the analysis of quantitative data for the purpose of creating actionable insights and measureable impact on organizational outcomes.
  • Proven ability to plan, organize, and coordinate AI product activities.
  • Demonstrated proficiency using machine learning methods and techniques (including neural networks, reinforcement learning, and adversarial learning) and machine learning software packages, and in manipulating large datasets.
  • Knowledge of supervised machine learning, decision trees, and logistic regression.
  • Display comprehensive understanding of, and skills using, statistical and data mining techniques such as GLM/Regression, Random Forest, Boosting, Trees, text mining, network analysis, simulation, scenario analysis, and clustering analysis.
  • Demonstrated ability to perform analytical functions and transform database structures including creating datasets and writing computer code to execute complex queries using statistical computer languages such as Python, R, and SQL.
  • Demonstrated proficiency working with large volumes of data across multiple servers using distributed data/computing tools such as Hadoop, Spark, MySQL, AWS, etc.
  • Demonstrated proficiency working with both relational (SQL) and nonrelational databases (NoSQL).
  • Demonstrated understanding of data privacy, security and related tools such as anonymization and encryption
  • Demonstrated ability to use web services such as Redshift, S3, DigitalOcean, etc.
  • Demonstrated skills in using data visualization tools (such as Jupyter, Matplotlib, D3, ggplot, Periscope, Business Objects) and to visually present complex data to stakeholders for consideration.
  • Demonstrated skills in knowledge synthesis and translation activities including working with and sorting and manipulating unstructured data from different platforms.
  • Excellent oral and written communication skills and ability to clearly and fluently translate technical findings to nontechnical partners and to communicate to multiple audiences using data storytelling and through graphics.
  • Demonstrated ability to work collaboratively in an interdisciplinary environment and to develop recommendations using facilitation and consensus building.
  • Strong analytical, critical thinking, and evaluation skills to discern and help solve the important problems facing health care, to identify new ways to leverage our data, and to direct efforts in the right direction.

Duties and Responsibilities:

  • Transforms data into critical information and knowledge by working with clinical management and staff, project/program managers, and members of the health informatics team to develop and implement ML Models. Uses these advanced ML models to identify patterns, trends, and opportunities to make predictions or reduce workload that will have a significant impact across various clinical domains within PHC.
  • Uses advanced ML processes to convert data from non-functional forms, such as scanned image text,

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