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Über
Why this role matters: Partnering with Machine Learning Engineers, Data Scientists, and Platform Engineering, the Machine Learning Operations Engineer owns the production lifecycle of machine-learning systems at AP. This role is responsible for deploying, operating, scaling, monitoring, and governing ML workloads so they run reliably, securely, and cost-effectively in production.
The Machine Learning Operations Engineer ensures that models and inference pipelines built by ML Engineers can be safely promoted across Dev, QA, and Prod, meet operational SLAs, and evolve without introducing instability or uncontrolled cost.
This is an individual contributing production operations role, focused on runtime behavior, infrastructure, and reliability. It will report directly to our Director, Application Operations.
What you will do:
Design, deploy, and operate end-to-end production ML pipelines across Dev, QA, and Prod environments. Set up and manage AWS SageMaker pipelines, endpoints, and monitoring for large scale inference workloads, including embedding generation, named entity recognition, reranking, and video processing. Own GPU and CPU infrastructure selection, scaling, and optimization, including instance benchmarking, autoscaling behavior, and load testing. Deploy, monitor, and operate inference services that support hundreds of thousands of queries per day across text, image, and video pipelines. Establish standardized ML deployment patterns at AP, including: Containerization and orchestration strategies
Environment isolation (Dev / QA / Prod)
Versioned promotion, rollback, and recovery mechanisms
Implement monitoring, alerting, drift detection, and evaluation metrics for production ML systems, tracking latency, error rates, throughput, and model/data drift. Enable A/B testing and controlled rollout strategies for ML models in production, in partnership with engineering and product teams. Partner closely with ML Engineers, Data Scientists, DevOps, and Platform teams to: Operationalize new models and pipeline improvements
Promote systems across environments safely
Ensure deployments meet reliability, scale, and cost targets
Manage high-throughput I/O and data movement for large collections of media assets (text, images, video), avoiding CPU, network, and storage bottlenecks. Reduce operational risk by enforcing reproducibility, observability, security, and cost controls across all production ML systems.
Who you are:
5+ years of experience deploying and operating ML inference systems in production. Strong experience with AWS SageMaker, including pipelines, endpoints, monitoring, and multi-environment deployments. Expertise deploying ML models using PyTorch and TensorFlow from an operational and serving perspective. Proven experience with model deployment and orchestration, including containerized inference and autoscaling. Experience selecting, evaluating, and optimizing compute resources (GPU/CPU) for production ML workloads. Experience setting up monitoring, evaluation metrics, and A/B testing frameworks for ML systems in production. Ability to collaborate effectively with ML Engineers, Data Scientists, and platform teams in a shared ownership model. What will set you apart:
Operational experience supporting ML systems involving: Transformer-based NLP models (e.g., BERT-family models)
Computer vision models
Ranking and reranking systems
Familiarity operating systems that use common ML model types such as: Convolutional and feed-forward neural networks
Ranking algorithms
Approximate Nearest Neighbor methods (e.g., HNSW)
Experience running ML workloads over large-scale text, image, and video datasets. Why join us:
A mission-driven, inclusive environment focused on both individual and collective success. Opportunities for professional development to help you reach your career goals. Access to tools, mentorship, and resources tailored to elevate your proficiency and contributions. Salary & Benefits:
The anticipated salary range for this position is
$125,000 - $155,000,
based on a candidate's skills, qualifications and location. The Associated Press offers comprehensive benefits, which include:
Competitive medical, dental and vision coverage Retirement benefits Company paid life insurance Paid vacation and sick days Paid parental leave for any new parent
Mental well-being resources
AP seeks to build an inclusive organization grounded in respect for differences. We support all aspects of diversity and provide equal employment opportunities to all employees and applicants without regard to race, color, religion, sex, marital status, national origin, age, sexual orientation, gender identity, disability, status as a veteran, or other characteristic protected by law.
Sprachkenntnisse
- English
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