Data Scientist – Global Equipment Platforms (Coca-Cola GEP)

The Coca-Cola Company

Atlanta, USonsite$149k-$173k/yrPosted Jul 8, 2026
Posting intelligenceActively listed

Skills

scikitlearndatabrickstimeseriespandaspythonazureml

About the role

Position Overview:

The Data Scientist, Global Equipment Platforms plays a key role in delivering data-driven insights and machine learning solutions that improve equipment performance, optimize operations, and support innovation across Coca-Cola’s global connected equipment ecosystem.

This is a hands-on role focused on building and deploying analytics and machine learning solutions using telemetry, service, and operational data across millions of connected devices.

The role partners closely with Data Engineering (platform, infrastructure, and pipelines) and Data Product & Analytics (use case definition, analytics, and adoption) teams to translate business problems into scalable data solutions and ensure real-world impact across bottlers and operating units.

Key Responsibilities:

Develop and deploy data science models and advanced analytics solutions for high-impact use cases such as predictive maintenance, equipment health monitoring, and service optimization.

Analyze large-scale telemetry and operational datasets to identify patterns, anomalies, and performance opportunities across equipment fleets.

Collaborate with cross-functional teams (Product, Engineering, AI, and Analytics) to translate business problems into data-driven solutions and measurable outcomes.

Work closely with data engineering teams to access, validate, and prepare data for analysis and model development.

Build feature pipelines and contribute to reusable datasets and analytics capabilities that support multiple use cases.

Support experimentation and innovation initiatives by developing metrics, dashboards, and analytical models to measure performance and impact.

Communicate insights and recommendations through clear, concise storytelling tailored to both technical and business stakeholders.

Validate, monitor, and continuously improve data models (analytics, statistical) and AI/ML models based on performance, feedback, and evolving business needs.

Ensure solutions are practical, scalable, and aligned with production environments and operational workflows.

Qualifications & Requirements:

3–5 years of experience in data science, analytics, or related roles with demonstrable business impact

Strong proficiency in Python, SQL, and data science libraries (e.g., Pandas, Scikit-learn, etc.)

Experience working with large, complex datasets, including time-series or telemetry data

Experience building and deploying predictive models in production or near-production environments

Strong analytical thinking with the ability to translate data into actionable insights

Experience working in cross-functional teams with product, engineering, and business stakeholders

Ability to work hands-on across data preparation, modeling, and analysis

Strong communication skills with ability to explain technical outputs in business terms

Preferred

Experience with IoT, connected devices, or equipment/telemetry-based data

Experience in predictive maintenance, anomaly detection, or reliability analytics

Exposure to cloud platforms such as Azure, Fabric, Databricks, or similar

Familiarity with data pipelines and working with data engineering teams

Experience supporting experimentation, A/B testing, or product analytics

Experience contributing to reusable analytics or data product initiatives

The Coca-Cola Company will not offer sponsorship for employment status (including, but not limited to, H1-B visa status and other employment-based nonimmigrant visas) for this position. Accordingly, all applicants must be currently authorized to work in the United States on a full-time basis and must not require The Coca-Cola Company's sponsorship to continue to work legally in the United States.

Collaborative Leadership, Communication, Data Compilation, Manufacturing Analytics, Process Improvements, Risk Assessments, Statistical Process Control (SPC), Supply Chain Processes

Pay Range:

United States of America: 149,000 USD - 173,000 USD

Base pay offered may vary depending on geography, job-related knowledge, skills, and experience. A full range of medical, financial, and/or other benefits, dependent on the position, is offered.

Annual Incentive Reference Value Percentage:

30

Annual Incentive reference value is a market-based competitive value for your role. It falls in the middle of the range for your role, indicating performance at target.

Location(s):

United States of America

City/Cities:

Atlanta

Travel Required:

00% - 25%

Relocation Provided:

No

Job Posting End Date:

July 22, 2026

Our Purpose and Growth Culture:

We are taking deliberate action to nurture an inclusive culture that is grounded in our company purpose, to refresh the world and make a difference. We act with a growth mindset, take an expansive approach to what’s possible and believe in continuous learning to improve our business and ourselves. We focus on four key behaviors – curious, empowered, inclusive and agile – and value how we work as much as what we achieve. We believe that our culture is one of the reasons our company continues to thrive after 130+ years. Visit Our Purpose and Vision to learn more about these behaviors and how you can bring them to life in your next role at Coca-Cola.

Pay Range:United States of America: 0 USD - 0 USD

Base pay offered may vary depending on geography, job-related knowledge, skills, and experience. A full range of medical, financial, and/or other benefits, dependent on the position, is offered.

Annual Incentive Reference Value Percentage:30

Annual Incentive reference value is a market-based competitive value for your role. It falls in the middle of the range for your role, indicating performance at target.

Long-term Incentive Reference Value Percentage:0 - 20

Long-term Incentive reference value is a market-based competitive value for your role.

Compensation

This Data Scientist role pays $149k-$173k/yr. Within typical range for data scientist roles in United States.

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