Senior Staff ML Engineer

Posted Yesterday
Be an Early Applicant
2 Locations
In-Office
150K-300K Annually
Senior level
Insurance
The Role
Architect and lead large-scale machine learning platforms for real-time fraud detection. Design end-to-end ML pipelines, oversee model deployment and monitoring, guide multiple engineering teams, evaluate advanced frameworks, and ensure reliability, interpretability, security, and regulatory compliance. The role requires hands-on technical leadership, cross-functional collaboration, production ML expertise, and extensive experience with distributed systems, cloud platforms, big-data technologies, and modern machine learning frameworks.
Summary Generated by Built In

Why Join GEICO?

At GEICO, we offer a rewarding career where your ambitions are met with endless possibilities.

 

Every day we honor our iconic brand by offering quality coverage to millions of customers and being there when they need us most. We thrive on relentless innovation to exceed our customers' expectations while making a real impact on local communities nationwide.

 

Founded in 1936, GEICO is a member of the Berkshire Hathaway family of companies and one of the largest auto insurers in the United States. When you join our company, we want you to feel valued, supported, and proud to work here. That's why we offer the GEICO Pledge: Great Company, Great Culture, Great Rewards, and Great Careers.

Overview: GEICO is on a journey to transform the insurance industry with Artificial Intelligence. The Fraud Risk Modeling team is at the center of this evolution. We are not just building models; we are architecting a centralized multi-modal fraud defense ecosystem that protects millions of customers. As a Senior Staff Machine Learning Engineer, you will be a technical anchor for the Fraud Risk Modeling team. You will partner with other AIML teams in building coherent, real-time fraud platform and solutions that unify claims, payment, and identity risk assessment. This is a high-impact role for a builder who cares about architectural elegance, system reliability, and is able to solve complex, large-scale, cross functional problems. This role requires a minimum of 15 years of relevant experience.

Key Responsibilities:

  • Technical Architecture & System Design:
    • Architect and implement scalable, high-performance machine learning platforms and systems capable of processing large data volumes and supporting real-time decision making and workflows.
    • Design end-to-end AIML pipelines - from data ingestion and feature engineering to model training, deployment, and continuous monitoring.
    • Evaluate and integrate cutting-edge AIML frameworks and libraries to maintain a state-of-the-art technology stack.
  • Technical Leadership & Expert Guidance:
    • Act as the tech lead across multiple ML feature teams, setting technical direction and ensuring consistency in design principles and best practices.
    • Provide hands-on mentorship and guidance during design reviews, code assessments, and performance tuning.
    • Lead by example in tackling complex technical challenges and driving system-wide architectural improvements.
  • Innovation & Research Integration:
    • Experiment with and prototype advanced machine learning algorithms and approaches to enhance system performance, model accuracy, and interpretability.
    • Stay abreast of the latest research and industry trends, translating these insights into actionable, production-level solutions.
    • Contribute to internal technical documentation and share knowledge across teams.
  • Lifecycle Management & Reliability:
    • Oversee the end-to-end lifecycle of machine learning models, ensuring robust testing, deployment, and ongoing monitoring.
    • Develop and implement systems for model monitoring, alerting, and automated retraining to maintain peak performance in production.
    • Ensure adherence to industry standards, security protocols, and regulatory compliance throughout the ML lifecycle.
  • Cross-Functional Collaboration:
    • Work closely with data scientists, software engineers, operations, and product teams to seamlessly integrate ML systems into production environments.
    • Translate complex technical concepts into actionable insights for both technical and non-technical stakeholders.
    • Foster a collaborative environment that encourages innovation and the sharing of best practices across teams.

Minimum Qualifications:

  • Bachelor’s degree in Machine Learning, Computer Science, Statistics, Mathematics, or a related field; an advanced degree (master’s or Ph.D.) is highly desirable.
  • 15+ years of hands-on experience in designing, implementing, and optimizing AIML systems in production environments.
  • Extensive expertise in architecting large-scale data pipelines, real-time AIML serving architectures, and managing the end-to-end AIML lifecycle.
  • Proven ability to tackle complex technical challenges, innovate through hands-on experimentation, and set technical standards across teams.
  • Deep proficiency in programming languages such as Python, Java, or similar, with a strong emphasis on coding excellence.
  • Experience with backend distributed systems & tools (e.g., Airflow, DBT, Kubernetes) and big-data technologies (e.g., Spark, MongoDB, Snowflake, Neo4j, Redis), familiarity with modern data feature stores.
  • Significant experience working with cloud platforms (AWS, Azure, etc.) and their machine learning services (e.g., SageMaker, Azure ML, etc.).
  • Familiarity with frameworks for model interpretability, fairness, and regulatory compliance, ensuring ethical and transparent ML systems.
  • Proficiency in machine learning frameworks such as TensorFlow, PyTorch, Scikit-learn, etc.

Preferred Qualifications:

  • Domain expertise: prior experience in Fraud Detection, Risk Modeling, Trust and Safety, or Digital Identity.
  • Advanced ML techniques: experience deploying LLM in production (RAG, fine-tuning) or building Graph Neural Networks for network analysis.
  • Governance: experience with model governance, explainability, and bias mitigation in a regulated industry like insurance.

If you are passionate about pushing the boundaries of machine learning technology, thrive in a hands-on technical leadership role, and enjoy solving complex, large-scale problems, we encourage you to apply.


 

Annual Salary

$150,000.00 - $300,000.00

The above annual salary range is a general guideline. Multiple factors are taken into consideration to arrive at the final hourly rate/ annual salary to be offered to the selected candidate. Factors include, but are not limited to, the scope and responsibilities of the role, the selected candidate’s work experience, education and training, the work location as well as market and business considerations.


 

GEICO will consider sponsoring a new qualified applicant for employment authorization for this position.


 

The GEICO Pledge:

Great Company: Protecting customers through life’s twists and turns with innovation and integrity.

Great Careers: Personalized development programs, mentorship, and certification assistance.

Great Culture: Inclusive and collaborative culture rooted in shared success.

Great Rewards: Competitive pay, benefits, and flexibility to support your well-being and future.

 

The equal employment opportunity policy of the GEICO Companies provides for a fair and equal employment opportunity for all associates and job applicants regardless of race, color, religious creed, national origin, ancestry, age, gender, pregnancy, sexual orientation, gender identity, marital status, familial status, disability or genetic information, in compliance with applicable federal, state and local law. GEICO hires and promotes individuals solely on the basis of their qualifications for the job to be filled.

 

GEICO reasonably accommodates qualified individuals with disabilities to enable them to receive equal employment opportunity and/or perform the essential functions of the job, unless the accommodation would impose an undue hardship to the Company. This applies to all applicants and associates. GEICO also provides a work environment in which each associate is able to be productive and work to the best of their ability. We do not condone or tolerate an atmosphere of intimidation or harassment. We expect and require the cooperation of all associates in maintaining an atmosphere free from discrimination and harassment with mutual respect by and for all associates and applicants.

Skills Required

  • Bachelor's degree in Machine Learning, Computer Science, Statistics, Mathematics, or a related field
  • 15+ years of hands-on experience designing, implementing, and optimizing production AI/ML systems
  • Experience architecting large-scale data pipelines and real-time AI/ML serving architectures
  • Experience managing the end-to-end AI/ML lifecycle
  • Ability to solve complex technical challenges, innovate through experimentation, and set technical standards across teams
  • Deep proficiency in Python, Java, or similar programming languages
  • Experience with backend distributed systems and tools such as Airflow, DBT, and Kubernetes
  • Experience with big-data technologies such as Spark, MongoDB, Snowflake, Neo4j, and Redis
  • Familiarity with modern data feature stores
  • Significant experience with cloud platforms such as AWS or Azure and machine learning services such as SageMaker or Azure ML
  • Familiarity with model interpretability, fairness, and regulatory compliance frameworks
  • Proficiency with machine learning frameworks such as TensorFlow, PyTorch, or Scikit-learn
  • Advanced degree such as a master's or Ph.D.
  • Domain expertise in fraud detection, risk modeling, trust and safety, or digital identity
  • Production experience deploying LLMs, including RAG or fine-tuning
  • Experience building Graph Neural Networks for network analysis
  • Experience with model governance, explainability, and bias mitigation in a regulated industry

GEICO Compensation & Benefits Highlights

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

  • Healthcare Strength — Healthcare coverage is described as comprehensive, spanning medical, prescription, behavioral health, dental (including orthodontia), and vision options with multiple plan types. Wellness resources, HSAs/FSAs, and related programs add breadth to the core health offering.
  • Retirement Support — Retirement support includes a 401(k) with an employer match, and the match level is still characterized as good even after adjustments. Access to a credit union and financial education tools further strengthens the overall retirement/financial support picture.
  • Flexible Benefits — Work-life programs provide flexibility through hybrid scheduling and limited remote-work options, alongside a broad menu of ancillary benefits such as commuter pre-tax programs, employee discounts, and charitable gift matching. Education support via tuition assistance and scholarships adds additional optionality for different needs.

GEICO Insights

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The Company
HQ: Chevy Chase, MD
26,259 Employees
Year Founded: 1936

What We Do

We know you know GEICO, but we want you to know that with us, you’ll find a rewarding career no matter which path you take. Our over 40,000 associates have been unexpectedly delighted to find that their jobs have turned into illuminating careers. You know us for insurance. Get to know us for great careers, too.

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