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Analytics Leadership Development Program; ALDP) Summer Internship

Job in Bloomfield, Hartford County, Connecticut, 06002, USA
Listing for: Cigna Health and Life Insurance Company
Full Time, Part Time, Seasonal/Temporary, Apprenticeship/Internship position
Listed on 2026-09-05
Job specializations:
  • IT/Tech
    Data Scientist, Data Analyst
Job Description & How to Apply Below
Position: Analytics Leadership Development Program (ALDP) Summer Internship

Analytics Leadership Development Program (ALDP) – Summer 2027 Intern The Cigna Group, together with its wholly owned subsidiary Evernorth, is seeking highly motivated graduate students to join the Analytics Leadership Development Program (ALDP) as Summer 2027 Interns. This internship is designed for candidates with a strong foundation in analytics and data science, meaningful hands‑on experience, and an interest in developing as future analytics leaders.

The ALDP offers an immersive learning experience that combines real‑world analytical work with business strategy, professional development, and leadership exposure, preparing interns for full‑time analytics roles following graduation. At Evernorth, data and analytics play a critical role in improving health outcomes, advancing equity, and driving affordability across the healthcare system. ALDP interns contribute to impactful work that supports smarter, data‑driven healthcare solutions while building both technical and leadership capabilities.

Internship

Experience

As an ALDP Intern, you will be embedded within an analytics team and work on real business problems that strengthen your analytical thinking, technical skills, and ability to communicate insights. Interns are supported by experienced leaders, mentors, and peers throughout the program.

  • Developing predictive models to identify customers who may benefit from targeted clinical or support programs
  • Applying machine learning techniques to segment populations and enable personalized engagement strategies
  • Analyzing drivers of medical cost trends and recommending data‑driven mitigation strategies
  • Measuring the impact of business initiatives using experimental or quasi‑experimental methods
  • Modeling the financial impact of changes to provider contracts or healthcare delivery models
Required Qualifications
  • Currently pursuing a Master’s degree in a quantitative field such as Data Science, Statistics, Mathematics, Analytics, or a closely related discipline
  • Prior hands‑on experience gained through internships, co‑ops, research assistantships, paid employment, or applied academic projects involving analytics, data science, statistics, or quantitative modeling (experience may include coursework, capstone projects, research labs, consulting or contract work, or part‑time roles)
  • Experience applying analytical methods, including:
    Programming in Python or R
  • Building, evaluating, or interpreting analytical or statistical models (e.g., linear or logistic regression, decision trees, or introductory machine learning models)
  • Applying statistical concepts such as hypothesis testing, experimental design, or A/B testing
  • Experience working with relational data and writing SQL queries to extract, manipulate, and analyze data
  • Foundational understanding of machine learning concepts, including supervised vs. unsupervised learning, feature engineering, and model evaluation
  • Strong problem‑solving and critical‑thinking skills, with the ability to structure ambiguous problems and develop data‑driven approaches
  • Demonstrated interest in leadership development, shown through academic, professional, teaching assistant, research, or extracurricular experiences
  • Ability to clearly communicate analytical insights to both technical and non‑technical audiences
  • Ability to work effectively in a collaborative, team‑based environment, incorporating feedback and diverse perspectives
  • Availability to work 40 hours per week for the full 12‑week internship program
Preferred Qualifications
  • Exposure to machine learning tools or frameworks through graduate‑level coursework, projects, or internships (e.g., scikit‑learn, Tensor Flow, PyTorch, or large language models)
  • Exposure to more advanced evaluation, experimental, or causal analysis methods gained through coursework or academic projects (e.g., matched case‑control analysis or introductory causal inference)
  • Experience working with large or complex datasets in an academic, research, or project setting, including data cleaning, preparation, or basic feature engineering
  • Familiarity with tools or libraries used to visualize and communicate analytical insights (e.g., Python visualization libraries, Tableau, or…
Position Requirements
Less than 1 Year work experience
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