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MLOps architect Databricks implementation C2c Woodland Hills, CA
Job in
Los Angeles, Los Angeles County, California, 90079, USA
Listed on 2026-06-26
Listing for:
Tech Mirrors
Seasonal/Temporary
position Listed on 2026-06-26
Job specializations:
-
IT/Tech
AI Engineer (Applied/Software), Cloud Computing: Infrastructure & Operations, Data Engineering, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Role: MLOps architect with Databricks implementation
Location:
Woodland Hills, CA (Onsite)
Contract
Job Description- Architect and implement scalable AWS ML/AI cloud infrastructure in a multi-tenant SaaS environment.
- Collaborate with data scientists, data engineers, and IT teams to define requirements and best practices for ML model development, deployment, and monitoring.
- Evaluate and recommend tools, platforms, and cloud technologies for ML Ops, ensuring alignment with enterprise architecture standards.
- Oversee the integration of ML pipelines with existing enterprise data and application architectures. Familiarity with Guidewire integrations is highly desirable.
- Oversee ML/AI related Kubernetes cluster management and provide guidance on alternative ML/AI workflow orchestration options such as Argo vs Kubeflow, and ML/AI data pipeline creation, management and governance with tools like Airflow.
- Employ tools like Argo CD to automate infrastructure deployment and management.
- Mentor and guide technical teams on ML Ops architecture, tooling, and best practices.
- 5+ years: AI/ML Strategy & Roadmap Development.
- 4+ years: MLOps Tools (Eg. AWS Sage Maker, GCP Vertex AI, Databricks).
- 3+ years: ML & Data Pipeline Orchestration (Eg. Kubeflow, Apache Airflow).
- 2+ years: ML Feature Store Tools (Eg. Tecton, Databricks, Feature Form).
- 3+ years:
Dev Ops (Eg. Argo CD / Argo Workflows), Containerization (Kubernetes, ROSA). - 3+ years:
Enterprise Application Integration (Eg. Guidewire, Salesforce). - 4+ years:
Data Platforms (Eg. Snowflake, Red Shift, Big Query). - 2+ years:
GenAI Tools / LLMs (Eg. OpenAI, Gemini, etc.). - 1+ year:
Agentic AI Frameworks (Eg. Lang Graph, Autogen, Google ADK). - 3+ years: API Orchestration (Eg. Mulesoft, Google Cloud API).
- 3+ years:
Data Mesh Architecture & Data Product Design. - 3+ years:
Event-Driven Architecture (EDA). - 4+ years:
Scalable AWS ML/AI Cloud Infrastructure (Multi-tenant SaaS). - 3+ years:
Data Architecture Guidelines Development. - 3+ years:
Security in Distributed Systems. - 4+ years:
Designing Scalable, Decoupled Systems. - 5+ years:
Strategy & Roadmap Creation. - 3+ years:
Influencing with Data-Driven Insights.
- 4+ years:
Functional Knowledge of Insurance Domains (Policy, Claims, Services Ops) – Preferred. - 2+ years:
Legal & Compliance Regulations in Insurance – Preferred. - 3+ years:
Data Product Development for Functional Domains. - 2+ years: AI-Driven Business Process Automation.
Digital:
Machine Learning Experience
Required:
10 & Above
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