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McKinsey & Company Inc Senior Knowledge Analyst, Data Science - Life Sciences in Minneapolis, Minnesota

Consulting Senior Knowledge Analyst, Data Science - Life Sciences Job ID: 88879 Who You'll Work With You will join a diverse team of data scientists, engineers, product managers and translators as part of the Life Sciences Data Center of Excellence (CoE), within the McKinsey Life Sciences Practice. McKinsey's Life Sciences practice serves clients across multiple functional service lines spanning Commercial, R&D, and Operations. You'll be responsible for creating next-generation data and analytic solutions that help us serve clients and stay on the cutting edge in the industry. The Data CoE is a highly visible team and a high-profile position; the Data CoE works regularly with McKinsey life sciences senior leaders and clients. What You'll Do You will be responsible for creating next-generation data and analytic solutions that help serve clients and stay on the cutting edge in the industry. You will be analyzing large amounts of medical and pharmacy claims data to drive insights that will be used to make strategic decisions for clients. You will partner with client teams across project settings to drive and produce analyses and enable quick-turn analytics client development work. You will develop solutions and products to craft reusable data-driven insights. You will serve as an advocate for the use of data and analytics, guiding teams on the proper selection of datasets and analytic strategies to ensure an increase in the value of impact delivered to clients. You will collaborate across other practices, analytics groups, and technical teams to ensure efforts are synergistic and cutting-edge. You will also maintain and deliver a compelling portrayal of McKinsey's data ecosystem and capabilities to clients and internal stakeholders; drive awareness of the firm's policies related to data risk and refine/operationalize KPIs. Qualifications 3+ years of professional experience as a data analyst or data scientist Bachelor's or advanced professional degree in engineering, computer science, physical sciences, statistics, data science or medicine from a recognized accredited institution of higher learning, college, or university Working with, processing, and analyzing healthcare medical and pharmacy claims data, EMR data, clinical trials data, commercial data, and other types of data relevant for healthcare, pharmaceutical and medical device business use cases Working knowledge of at least two claims data sets (e.g. IQVIA, Symphony, Healthverity, CMS, DRG, Compile, Komodo, Truven, etc.) Applying data science methods (i.e., statistical modeling, machine learning techniques: regression, forecasting / predictive modeling, decision trees) to healthcare and Life Sciences business problems Understanding key terminologies including: ICD-10, NDC, CPT, HCPCS, NPI, SNOMED, LOINC, RxNorm Proficiency in at least two of the following coding languages: SQL, Python, or R Proficiency in at least one of the following visualization/BI tools: Tableau, PowerBI, Qlik, or similar visualization/BI tools Proficiency in handling large amounts of data in at least one of the following cloud computing tools: Snowflake, Microsoft Azure cloud, or AWS Developing and executing detailed analytics workplan and presenting to senior stakeholders and clients Communicating analytical and technical concepts to both technical and non-technical colleagues Consulting experience within Life Sciences, Pharmaceutical, Healthcare, biotech or MedTech device industries, creating and contributing to presentations and client deliverables FOR U.S. APPLICANTS: McKinsey & Company is an Equal Opportunity/Affirmative Action employer. All qualified applicants will receive consideration for employment without regard to sex, gender identity, sexual orientation, race, color, religion, national origin, disability, protected Veteran status, age, or any other characteristic protected by applicable law. Certain US jurisdictions require McKinsey & Company to include a reasonable estimate of the sala y or hourly range for this role. For new joiners for this role in the United States, including all office locations where the job may be performed, a reasonable estimated range is $125,000 - $130,000 -to help you understand what you can expect. This reflects our best estimate of the lowest to highest [salary/hourly wages] for this role at the time of this posting, ensuring you have a clear picture right from the start, though it's important to remember that actual salaries may vary. Factors like your office location, your unique blend of experience and skills, and our current organizational needs all play a part in determining the final figure. Certain roles are also eligible for bonuses, subject to McKinsey's discretion and based on factors such as individual and/or organizational performance. Additionally, we provide a comprehensive benefits package that reflects our commitment to the wellness of our colleagues and their families. This includes medical, dental and vision coverage, telemedicine services, life, accident and disability insurance, parental leave and family planning benefits, caregiving resources, a generous retirement program, financial guidance, and paid time off. FOR NON-U.S. APPLICANTS: McKinsey & Company is an Equal Opportunity employer. For additional details regarding our global EEO policy and diversity initiatives, please visit our McKinsey Careers and Diversity & Inclusion sites. Job Skill Group - CSS Pre-Associate Job Skill Code - SFDS - Senior Fellow, Data Science Function - Technology Industry - Life Sciences Post to LinkedIn - Yes Posted to LinkedIn Date - Tue Aug 15 00:00:00 GMT 2023 LinkedIn Posting City - New York LinkedIn Posting State/Province - New York LinkedIn Posting Country - United States LinkedIn Job Title - Senior Knowledge Analyst, Data Science - Life Sciences LinkedIn Function - Analyst;Consulting LinkedIn Industry - Biotechnology;Health, Wellness and Fitness LinkedIn Seniority Level - Associate Equal Opportunity Employment Disclaimer McKinsey & Company is an equal opportunity employer. We evaluate qualified applicants without regard to race, color, religion, sex, national origin, disability, veteran status, and other protected characteristics.

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