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Ouro

ML Ops Developer III

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In-Office
Austin, TX, USA
In-Office
Austin, TX, USA

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About the Company:

Ouro is a global, vertically-integrated financial services and technology company dedicated to the delivery of innovative financial empowerment solutions to consumers worldwide. Ouro’s financial products and services span prepaid, debit, cross-border payments, and loyalty solutions for consumers and enterprise partners.
Ouro's flagship product Netspend provides prepaid and debit account solutions that connect customers with secure, convenient access to global payment networks so they can manage their money and make everyday purchases. With a nationwide U.S. retail network, customers can purchase and reload Netspend products at 130,000 reload points and over 100,000 distributing locations.
Since Ouro's founding in 1999 by industry pioneers, Ouro products have processed billions of dollars in transaction volume and served millions of customers worldwide. The company is headquartered in Austin, Texas with employees worldwide.

Role Summary

The MLOps Developer will join a centralized MLOps Engineering team responsible for productionizing machine learning and generative AI workloads at enterprise scale. The role will drive the design, automation, deployment, observability, and governance of ML and LLM platforms using AWS SageMaker and Amazon Bedrock.

This position requires close collaboration with Data Science (DS) teams to support model development, training, validation, and deployment into production. You will also be responsible for evolving and optimizing ML workflows, continuously improving automation, reliability, and security to meet emerging business and platform requirements.

Key Responsibilities
  • Architect, deploy, and operate development and production MLOps platforms on AWS (SageMaker, Bedrock)

  • Build and maintain CI/CD pipelines for ML model training and deployment

  • Implement Infrastructure as Code (IaC) using Terraform

  • Manage AWS cloud components, including IAM, VPC, EKS, Lambda, security, networking, monitoring, and compliance

  • Automate the end-to-end ML model lifecycle (training, deployment, endpoints, monitoring, and failure detection)

  • Configure and manage cloud observability (logging, alerts, dashboards – CloudWatch and monitoring tools)

  • Enable secure LLM onboarding, prompt orchestration, and governance using Amazon Bedrock

  • Ensure platform reliability, scalability, security, and regulatory compliance

  • Partner with DS and Engineering to support ML model productionization and release governance

Required Skills
  • Advanced proficiency in Python

  • Strong experience in Terraform (IaC) for AWS infrastructure automation

  • Hands-on knowledge of CI/CD, DevOps, and deployment governance

  • Experience with AWS ML/AI ecosystem: SageMaker, Bedrock, IAM, VPC, EKS, Lambda, CloudWatch, cloud security, and monitoring

  • Practical experience with ML model deployment, endpoints, and production support

  • Solid understanding of cloud security, networking, logging, and observability

  • Knowledge of MLOps best practices and ML system design

Preferred Qualifications
  • 7+ years of experience in AI/ML engineering or platform roles

  • Experience with AWS SageMaker endpoints, pipelines, and model hosting

  • Experience integrating, orchestrating, or governing LLM workloads using Amazon Bedrock

  • Prior experience with ML deployments in production environments

  • Familiarity with Terraform modules and EKS-based deployments

  • Knowledge of ML observability, monitoring, and failure detection

  • Experience in FinTech or enterprise data platforms is an advantage

Why This Role Matters

This is a mission-critical engineering role that ensures ML and LLM workloads are deployed securely, reliably, and efficiently at enterprise scale. The role supports long-term AI platform evolution and accelerates scalable ML and generative AI adoption across the organization.

HQ

Ouro Austin, Texas, USA Office

Austin, TX, United States, 78759

What you need to know about the Austin Tech Scene

Austin has a diverse and thriving tech ecosystem thanks to home-grown companies like Dell and major campuses for IBM, AMD and Apple. The state’s flagship university, the University of Texas at Austin, is known for its engineering school, and the city is known for its annual South by Southwest tech and media conference. Austin’s tech scene spans many verticals, but it’s particularly known for hardware, including semiconductors, as well as AI, biotechnology and cloud computing. And its food and music scene, low taxes and favorable climate has made the city a destination for tech workers from across the country.

Key Facts About Austin Tech

  • Number of Tech Workers: 180,500; 13.7% of overall workforce (2024 CompTIA survey)
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  • Key Industries: Artificial intelligence, hardware, cloud computing, software, healthtech
  • Funding Landscape: $4.5 billion in VC funding in 2024 (Pitchbook)
  • Notable Investors: Live Oak Ventures, Austin Ventures, Hinge Capital, Gigafund, KdT Ventures, Next Coast Ventures, Silverton Partners
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