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ML Operations Engineer - Associate Vice President
IRVING, Texas, United States of America
·
On-site
·
Full-time
·
1mo ago
Compensation
$107,120 - $160,680
Benefits & Perks
•Healthcare
•401(k)
•Equity
•Healthcare
•401k
•Equity
Required Skills
Python
Ray Tune
MLflow
Docker
Kubernetes
Apache Airflow
Terraform
Linux/Unix
We are seeking an experienced MLOps Engineer to join our DevOps and Infrastructure Engineering team. This role is crucial for operationalizing, scaling, and maintaining our Artificial Intelligence (AI) and Machine Learning (ML) applications. The successful candidate will leverage their expertise to ensure seamless, scalable, and reliable deployment and management of AI/ML models, working closely with data scientists and ML engineers. This position requires strong proficiency in Python, hands-on experience with Ray Tune for hyperparameter optimization, and MLflow for experiment tracking and model lifecycle management.
Key Responsibilities:
-
ML Pipeline Development & Automation: Design, build, and maintain robust and scalable end-to-end ML pipelines for data ingestion, preprocessing, model training, validation, and deployment.
-
CI/CD for ML: Implement and manage Continuous Integration/Continuous Delivery (CI/CD) pipelines specifically tailored for machine learning workflows, ensuring automated testing, versioning, and deployment of ML artifacts.
-
Experiment Tracking & Model Management: Utilize MLflow extensively for experiment tracking, reproducible runs, managing model versions, and maintaining a centralized model registry.
-
Hyperparameter Optimization: Leverage Ray Tune for efficient and distributed hyperparameter optimization to enhance model performance and accelerate experimentation.
-
Containerization & Orchestration: Package ML models and their dependencies using Docker and deploy/manage them effectively on Kubernetes clusters.
-
Data Platform Integration: Integrate with and optimize existing data platforms, including Apache Iceberg, Apache Spark, and FLINK, to ensure efficient data processing and feature engineering for ML models.
-
Data Storage & Streaming: Work with PostgreSQL, Oracle, and MongoDB for diverse data storage needs, and utilize Kafka for real-time data streaming to support various ML applications.
-
Monitoring & Observability: Implement comprehensive monitoring, logging, and alerting solutions (e.g., Prometheus, Grafana) for ML models in production, tracking model performance, data drift, and infrastructure health to ensure reliability and facilitate automated retraining or rollback.
-
Scripting & Automation: Develop automation scripts and tools using Python and Bash/Go to streamline MLOps processes and integrate various systems.
-
Collaboration: Act as a vital link between data scientists, ML engineers, and infrastructure teams, facilitating clear communication and ensuring that ML solutions are production-ready.
Required Qualifications:
-
Experience: 3-5 years of hands-on experience in an MLOps, DevOps, or Machine Learning Engineering role, with a proven track record of deploying and managing ML models in production environments.
-
Programming: Expert-level proficiency in Python for ML development, scripting, and automation.
-
MLOps Tooling: Demonstrated hands-on experience with Ray Tune for hyperparameter optimization and **Air Flow or MLflow **for experiment tracking and model management.
-
Containerization & Orchestration: Strong experience with Docker and Kubernetes (including Helm).
-
CI/CD: Experience implementing CI/CD practices for software and/or ML pipelines.
-
Data Technologies: Familiarity with or experience with Apache Spark, Apache Iceberg, FLINK, and Kafka.
-
Databases: Experience with PostgreSQL, Oracle, and MongoDB.
-
Workflow Orchestration: Experience with Apache Airflow.
-
Infrastructure as Code: Experience with Hashi Corp (Terraform).
-
Operating Systems: Proficiency in Linux/Unix environments.
Desirable Skills:
-
Experience with cloud platforms (AWS, Azure, GCP) and managing cloud-native ML infrastructure.
-
Knowledge of deep learning frameworks such as Tensor Flow or Py Torch.
-
Experience with generative AI technologies (e.g., LLMs, prompt engineering, RAG pipelines).
-
Understanding of distributed computing and big data processing techniques.
Job Family Group:
Technology
Job Family:
Applications Development
Time Type:
Full time
Primary Location:
Irving Texas United States:
Primary Location Full Time Salary Range:
$107,120.00 - $160,680.00
In addition to salary, Citi’s offerings may also include, for eligible employees, discretionary and formulaic incentive and retention awards. Citi offers competitive employee benefits, including: medical, dental & vision coverage; 401(k); life, accident, and disability insurance; and wellness programs. Citi also offers paid time off packages, including planned time off (vacation), unplanned time off (sick leave), and paid holidays. For additional information regarding Citi employee benefits, please visit citibenefits.com. Available offerings may vary by jurisdiction, job level, and date of hire.
Most Relevant Skills
Please see the requirements listed above.
Other Relevant Skills
For complementary skills, please see above and/or contact the recruiter.
Anticipated Posting Close Date:
Feb 12, 2026
Citi is an equal opportunity employer, and qualified candidates will receive consideration without regard to their race, color, religion, sex, sexual orientation, gender identity, national origin, disability, status as a protected veteran, or any other characteristic protected by law.
If you are a person with a disability and need a reasonable accommodation to use our search tools and/or apply for a career opportunity review Accessibility at Citi.
View Citi’s EEO Policy Statement and the Know Your Rights poster.
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About Citigroup

Citigroup
PublicCitigroup Inc. or Citi is an American multinational investment bank and financial services company based in New York City. The company was formed in 1998 by the merger of Citicorp, the bank holding company for Citibank, and Travelers; Travelers was spun off from the company in 2002.
10,001+
Employees
New York City
Headquarters
Reviews
3.3
4 reviews
Work Life Balance
3.0
Compensation
3.2
Culture
2.8
Career
2.5
Management
2.7
35%
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Pros
Compensation increases for investment banking roles
Legitimate investment banking employer
Internship opportunities available
Cons
Unclear career progression paths
Limited meaningful experience in internships
Compensation raises lower than competitors
Salary Ranges
28 data points
Mid/L4
Senior/L5
Staff/L6
Mid/L4 · Business Risk Intermediate Analyst
1 reports
$77,165
total / year
Base
$67,100
Stock
-
Bonus
-
$77,165
$77,165
Interview Experience
5 interviews
Difficulty
2.8
/ 5
Duration
14-28 weeks
Experience
Positive 0%
Neutral 40%
Negative 60%
Interview Process
1
Application Review
2
Recruiter Screen
3
Programming Assessment
4
Hiring Manager Interview
5
Panel/Superday Interviews
6
Final Decision
Common Questions
Technical Knowledge
Case Study
Behavioral/STAR
Past Experience
Culture Fit
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