You want more out of a career. A place to share your ideas freely — even if they’re daring or different. Where the true you can learn, grow, and thrive. At Verizon, we power and empower how people live, work and play by connecting them to what brings them joy. We do what we love — driving innovation, creativity, and impact in the world. Our V Team is a community of people who anticipate, lead, and believe that listening is where learning begins. In crisis and in celebration, we come together — lifting our communities and building trust in how we show up, everywhere & always. Want in? Join the #VTeamLife.
What you’ll be doing...You will join a dynamic team of propensity modelers dedicated to supporting Verizon's base management organization as it transitions to an agile pod model. As an essential member of this team, you will be assigned to a specific base management pod focused on key moments in the customer lifecycle and specific trigger events. In this role, you will be providing advanced machine learning modeling support that empowers our pods and marketing partners to unlock microsegmentation and high-level personalization, directly driving down customer churn and maximizing lifetime value.
Your responsibilities will include:
Developing, training, and deploying advanced propensity models to predict customer behaviors, churn risk, and lifecycle triggers.
Collaborating cross-functionally with assigned base management pods to translate complex business problems into actionable data science solutions.
Unlocking microsegmentation and personalization strategies by translating model outputs into tailored customer journeys for marketing execution.
Monitoring, evaluating, and refining model performance over time to ensure high accuracy, relevancy, and business impact.
Partnering with technology and data engineering teams to scale machine learning workflows and production systems.
Communicating complex analytical concepts and model insights clearly to business partners and executive stakeholders.
This hybrid role will have a defined work location that includes work from home and assigned office days as set by the manager.
What we’re looking for...You enjoy working in a collaborative, fast-paced environment and have a passion for transforming complex data into highly personalized customer experiences. You thrive when tackling challenging analytical problems and are energized by the opportunity to directly impact business outcomes like customer retention and engagement.
You'll need to have:
Bachelor's degree or four or more years of work experience.
Four or more years of relevant experience required, demonstrated through work experience and/or military experience.
Experience building, deploying, and maintaining predictive models or propensity models in a production environment.
Experience with Python, R, or similar programming languages for data science and machine learning.
Experience with SQL and database technologies for large-scale data manipulation and extraction.
Even better if you have one or more of the following:
Master's degree or Ph.D. in Data Science, Computer Science, Statistics, or a related quantitative field.
Knowledge of LLMs, RAG, Google ADK, and LangGraph.
Experience with Google BigQuery.
Knowledge of base management structures, customer lifecycle stages, or churn prevention strategies.
Experience working in an Agile environment or within cross-functional, pod-based operating models.
Experience with cloud platforms such as GCP, AWS, or Azure, and cloud-native machine learning tools (e.g., Vertex AI, SageMaker).
Experience with machine learning framework ecosystems (e.g., TensorFlow, PyTorch, Scikit-Learn).
Strong communication skills with the ability to explain complex machine learning models and metrics to non-technical stakeholders.
If Verizon and this role sound like a fit for you, we encourage you to apply even if you don’t meet every “even better” qualification listed above.
Verizon is an equal opportunity employer. We evaluate qualified applicants without regard to veteran status, disability or other legally protected characteristics.
Benefits and CompensationOur benefits are designed to help you move forward in your career, and in areas of your life outside of Verizon. From health and wellness benefit options including: medical, dental, vision, short and long term disability, basic life insurance, supplemental life insurance, AD&D insurance, identity theft protection, pet insurance and group home & auto insurance. We also offer a matched 401(k) savings plan, up to 8 company paid holidays per year and up to 6 personal days per year, paid parental leave, adoption assistance and tuition assistance, plus other incentives, we’ve got you covered with our award-winning total rewards package. Depending on the role, employees have the opportunity to receive compensation in the form of premium pay such as overtime, shift differential, holiday pay, allowances, etc. Newly hired employees receive up to 15 days of vacation per year, which grows with additional service. For part-timers, your coverage will vary as you may be eligible for some of these benefits depending on your individual circumstances.
The salary will vary depending on your location and confirmed job-related skills and experience. This is an incentive based position with the potential to earn more. For part-time roles, your compensation will be adjusted to reflect your hours.The annual salary range for the location(s) listed on this job requisition based on a full-time schedule is: $101,000.00 - $194,000.00.Skills Required
- Bachelor's degree or four or more years of work experience.
- Four or more years of relevant experience.
- Experience building, deploying, and maintaining predictive or propensity models in a production environment.
- Experience with Python, R, or similar programming languages for data science and machine learning.
- Experience with SQL and database technologies for large-scale data manipulation and extraction.
- Strong communication skills with the ability to explain complex machine learning models and metrics to non-technical stakeholders.
- Master's degree or Ph.D. in Data Science, Computer Science, Statistics, or related quantitative field.
- Knowledge of LLMs, RAG, Google ADK, and LangGraph.
- Experience with Google BigQuery.
- Knowledge of base management structures, customer lifecycle stages, or churn prevention strategies.
- Experience working in an Agile environment or within cross-functional, pod-based operating models.
- Experience with cloud platforms (GCP, AWS, Azure) and cloud-native ML tools (Vertex AI, SageMaker).
- Experience with machine learning frameworks (TensorFlow, PyTorch, Scikit-Learn).
Verizon Compensation & Benefits Highlights
The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Verizon and has not been reviewed or approved by Verizon.
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Fair & Transparent Compensation — Fairness and competitiveness of pay are highlighted through statements such as “pay is good,” “pays very well,” and “the compensation at VZ is very competitive.” High earning potential is also described for certain roles, including base pay plus commissions and bonuses.
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Healthcare Strength — Healthcare coverage is portrayed as comprehensive, spanning medical, dental, and vision with before-tax contributions and preventive-care credits. Increased HSA contributions and multiple plan options further reinforce the perceived strength of health benefits.
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Retirement Support — Retirement offerings are positioned as robust, including a strong 401(k) match, pension eligibility for some groups, and additional financial protections like life and long-term disability coverage. Union contract updates also point to pension increases and retirement security improvements.
Verizon Insights
What We Do
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Why Work With Us
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