Machine Learning Engineer II

Posted 4 Days Ago
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Atlanta, GA, USA
In-Office
152K-178K Annually
Senior level
Food
The Role
Leads the architecture and implementation of Azure-based data platforms and machine-learning-driven customer and commercial segmentation. Builds scalable data models, pipelines, and services; operationalizes ML models; establishes monitoring, retraining, governance, privacy, and data-quality standards; and partners with product, business, security, and architecture teams. Acts as a senior individual contributor who guides technical direction, mentors engineers, and delivers cross-team initiatives without direct people management.
Summary Generated by Built In

Job Description Summary:

The Senior Manager, Software Engineer, Data Platform & Segmentation is a senior individual contributor accountable for the technical vision, design, and evolution of data platforms and segmentation capabilities that power Customer and Commercial product teams operating under a modern Product Operating Model.

This role functions as a hands-on technical leader and multiplier, shaping how customer, commercial, and behavioral data is modeled, segmented, and activated across products, enabling better decisions, personalization, and measurable business outcomes.

The role emphasizes deep technical expertise, product partnership, and architectural leadership, rather than people management.

Core Accountabilities

Product Model & Discovery Partnership

  • Partner closely with Product Managers, Designers, and Tech Leads to co-own outcomes, not just data assets.
  • Participate actively in product discovery to ensure segmentation strategies are technically feasible, scalable, and analytically sound.
  • Translate business and customer questions into durable data models and segmentation frameworks.

Machine Learning

  • Strong experience in Machine Learning engineering, leveraging ML models to build Segmentation strategies  
  • Experience operationalizing ML-driven segmentation, including integrating segmentation outputs into other products
  • Collaborating with data scientists
  • managing standards for model life cycle, monitoring drift, retraining, etc.
  • Understanding of Azure ML (or any other cloud) workspaces and integrating them with Azure pipelines

Data Platform & Segmentation Architecture

  • Define and evolve the segmentation architecture across customer and commercial data domains.
  • Design scalable data models that support real-time, near real time, and batch segmentation use cases.
  • Ensure segmentation logic is reusable, explainable, and consistent across channels and products.
  • Make explicit trade-offs across latency, accuracy, cost, privacy, and maintainability.

Engineering Execution & Data Quality

  • Build and maintain high-quality, production-grade data pipelines and services.
  • Ensure strong standards for data quality, lineage, observability, and reliability.
  • Reduce fragmentation and duplication in segmentation logic across teams.
  • Leverage metrics to continuously improve data freshness, accuracy, and usability.

Individual Contributor Technical Leadership

  • Act as a go-to expert for data platform and segmentation design.
  • Lead complex technical initiatives end-to-end through hands-on contribution.
  • Influence technical direction through design reviews, reference implementations, and documented standards.
  • Mentor senior engineers and Tech Leads through coaching and technical guidance (without direct management responsibility).

Microsoft Azure Data Platform & Fabric Expertise

  • Demonstrate deep, hands-on expertise with Microsoft Azure data services and their application in large-scale, product-centric environments.
  • Design and evolve segmentation and data platform architectures leveraging Azure Data Fabric concepts, ensuring interoperability, governance, and reuse across domains.
  • Apply strong architectural judgment across core Azure data products, including data ingestion, storage, processing, analytics, and activation layers.
  • Optimize designs across cost, performance, latency, and scalability, using Azure-native capabilities and patterns.
  • Ensure secure-by-design implementations aligned with Azure identity, access, encryption, and compliance controls.
  • Partner with enterprise architecture, cloud, and security teams to ensure Azure data platform decisions align with broader enterprise strategy while preserving team autonomy.
  • Stay current on Azure data platform evolution and proactively assess new capabilities for business value, not novelty.

Business Partnership & Communication

  • Serve as a trusted technical partner to Customer and Commercial stakeholders.
  • Communicate segmentation concepts, assumptions, and limitations in clear business language.
  • Proactively surface data constraints, privacy considerations, and trade-offs to enable informed decisions.
  • Support external partner and vendor conversations as a technical authority when needed.

Governance, Privacy & Compliance

  • Ensure segmentation approaches comply with data privacy, consent, and regulatory requirements.
  • Collaborate with Security, Privacy, and Legal teams to embed governance into platform design—not bolt it on later.
  • Advocate for responsible and ethical use of customer and commercial data.

Success Measures

  • Segmentation capabilities measurably improve customer engagement and commercial outcomes.
  • Reduced duplication and inconsistency in segmentation logic across products.
  • Improved data quality, freshness, and trustworthiness.
  • Faster time-to-insight and activation for product teams.
  • Platforms and models that scale with growth while controlling cost and risk.

Leadership Profile

  • Outcome-driven, not data for data’s sake
  • Deep technical expertise with strong product intuition
  • Influences through credibility and clarity, not authority
  • Comfortable operating in ambiguity and evolving problem spaces
  • Holds a high bar for data quality, ethics, and reliability

Required Experience & Capabilities

  • Bachelor’s degree in Computer Science, Engineering, Data Science, or equivalent experience.
  • 8+ years of hands-on experience in data platform, analytics engineering, or backend engineering roles.
  • Deep expertise in data modeling, segmentation strategies, and large-scale data systems.
  • Strong experience with cloud-native data platforms and modern data tooling.
  • Proven ability to partner closely with product and business stakeholders.
  • Demonstrated impact as a senior individual contributor on complex, cross-team 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.

Skills:

Pay Range:

United States: 152,000 - 178,300 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:

15

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:

September 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.

We are an Equal Opportunity Employer and do not discriminate against any employee or applicant for employment because of race, color, sex, age, national origin, religion, sexual orientation, gender identity and/or expression, status as a veteran, and basis of disability or any other federal, state or local protected class. When we collect your personal information as part of a job application or offer of employment, we do so in accordance with industry standards and best practices and in compliance with applicable privacy laws.

Skills Required

  • Bachelor's degree in Computer Science, Engineering, Data Science, or equivalent experience
  • 8+ years of hands-on experience in data platform, analytics engineering, or backend engineering roles
  • Deep expertise in data modeling, segmentation strategies, and large-scale data systems
  • Strong experience with cloud-native data platforms and modern data tooling
  • Strong experience in machine learning engineering and operationalizing ML-driven segmentation
  • Experience with Azure ML or other cloud machine-learning workspaces and Azure Pipelines integration
  • Proven ability to partner closely with product and business stakeholders
  • Demonstrated impact as a senior individual contributor on complex, cross-team initiatives
  • Must be currently authorized to work full-time in the United States without employer sponsorship

The Coca-Cola Company Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about The Coca-Cola Company and has not been reviewed or approved by The Coca-Cola Company.

  • Retirement Support Retirement benefits are positioned as a standout, combining a 401(k) match with a company-funded cash-balance pension and an employee stock purchase plan match that together materially increase long-term package value.
  • Healthcare Strength Health coverage is described as broad and feature-rich, including national medical coverage plus specialized add-ons like virtual care, second opinions, oncology navigation, fertility support, and chronic-condition programs.
  • Leave & Time Off Breadth Time-off benefits are outlined with structured vacation accrual that increases with tenure and a holiday program that includes both set and floating days.

The Coca-Cola Company Insights

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The Company
HQ: Atlanta, GA
88,900 Employees
Year Founded: 1892

What We Do

The Coca-Cola Company (NYSE: KO) is a total beverage company, offering over 500 brands in more than 200 countries and territories. In addition to the company’s Coca-Cola brands, our portfolio includes some of the world’s most valuable beverage brands, such as AdeS soy-based beverages, Ayataka green tea, Dasani waters, Del Valle juices and nectars, Fanta, Georgia coffee, Gold Peak teas and coffees, Honest Tea, innocent smoothies and juices, Minute Maid juices, Powerade sports drinks, Simply juices, smartwater, Sprite, vitaminwater and ZICO coconut water.

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