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Remote Senior Devops Engineer

Ll Oefentherapie

A distancia

MXN 400,000 - 600,000

Jornada completa

Hace 10 días

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Descripción de la vacante

A leading cloud solutions firm in Mexico is seeking an experienced ML Engineer to design and implement machine learning workflows. The ideal candidate will have 5-8 years of experience in ML engineering or DevOps, proficiency in Python, and a solid understanding of CI/CD pipelines, Docker, and Kubernetes. This role emphasizes collaboration with data engineers and involves deploying machine learning models in modern architectures. The company offers competitive benefits and supports workforce inclusivity.

Servicios

Competitive benefits
Flexible medical and life insurance options
Retirement options
Volunteer programs

Formación

  • 5–8 years of experience in ML engineering or DevOps.
  • Proficiency in Python for automation and data processing.
  • Experience with CI/CD pipelines and MLOps frameworks.

Responsabilidades

  • Design, implement, and automate ML lifecycle workflows.
  • Collaborate with data engineers to deploy models.
  • Integrate ML frameworks into distributed environments.

Conocimientos

Machine Learning
Python
CI/CD Pipelines
Docker
Kubernetes
SQL
Data Engineering
MLOps
Cloud Platforms
Terraform

Educación

Bachelor’s or Master’s degree in Computer Science or Data Science

Herramientas

MLflow
Kubeflow
Airflow
TensorFlow
PyTorch
Apache Spark
Prometheus
Grafana
Apache Iceberg
DVC
Descripción del empleo
  • Does this position require a security clearance? No
  • Years 6 to 10+ years
  • Applicants are required to read, write, and speak the following languages English,Spanish
Job Description

Key Responsibilities

  • Design, implement, and automate ML lifecycle workflows using tools like MLflow, Kubeflow, Airflow and OCI Data Science Pipelines.
  • Build and maintain CI/CD pipelines for model training, validation, and deployment using GitHub Actions, Jenkins, or Argo Workflows.
  • Collaborate with data engineers to deploy models within modern data lakehouse architectures (e.g., Apache Iceberg, Delta Lake, Apache Hudi).
  • Integrate machine learning frameworks such as TensorFlow, PyTorch, and Scikit-learn into distributed environments like Apache Spark, Ray, or Dask.
  • Operationalize model tracking, versioning, and drift detection using DVC, model registries, and ML metadata stores.
  • Manage infrastructure as code (IaC) using tools like Terraform, Helm, or Ansible to support dynamic GPU/CPU training clusters.
  • Configure real-time and batch data ingestion and feature transformation pipelines using Kafka, Goldengate and OCI Streaming.
  • Collaborate with DevOps and platform teams to implement robust monitoring, observability, and alerting with tools like Prometheus, Grafana, and the ELK Stack.
  • Support AI governance by enabling model explainability, audit logging, and compliance mechanisms aligned with enterprise data and security policies.

Required Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Data Science, or a related technical discipline.
  • 5–8 years of experience in ML engineering, DevOps, or data platform engineering, with at least 2 years in MLOps or model operations.
  • Proficiency in Python, particularly for automation, data processing, and ML model development.
  • Solid experience with SQL and distributed query engines (e.g., Trino, Spark SQL).
  • Deep expertise in Docker, Kubernetes, and cloud-native container orchestration tools (e.g., OCI Container Engine, EKS, GKE).
  • Working knowledge of open-source data lakehouse frameworks and data versioning tools (e.g., Delta Lake, Apache Iceberg, DVC).
  • Familiarity with model deployment strategies, including batch, real-time inference, and edge deployments.
  • Experience with CI/CD pipelines (GitHub Actions, GitLab CI, Jenkins) and MLOps frameworks (Kubeflow, MLflow, Seldon Core).
  • Competence in implementing monitoring and logging systems (e.g., Prometheus, ELK Stack, Datadog) for ML applications.
  • Strong understanding of cloud platforms (OCI, AWS, GCP) and IaC tools (Terraform, CloudFormation).

Preferred Qualifications

  • Experience integrating AI workflows with Oracle Data Lakehouse, Databricks, or Snowflake.
  • Hands-on experience with orchestration tools like Apache Airflow, Prefect, or Dagster.
  • Exposure to real-time ML systems using Kafka or Oracle Stream Analytics.
  • Understanding of vector databases (e.g., Oracle 23ai Vector Search).
  • Knowledge of AI governance, including model explainability, auditability, and reproducibility frameworks.

Soft Skills

  • Strong problem-solving skills and an automation-first mindset.
  • Excellent cross-functional communication, especially when collaborating with data scientists, DevOps, and platform engineering teams.
  • A collaborative and knowledge-sharing attitude, with good documentation habits.
  • Passion for continuous learning, especially in the areas of AI/ML tooling, open-source platforms, and data engineering innovation.
Qualifications
About Us

As a world leader in cloud solutions, Oracle uses tomorrow’s technology to tackle today’s challenges. We’ve partnered with industry-leaders in almost every sector—and continue to thrive after 40+ years of change by operating with integrity.

We know that true innovation starts when everyone is empowered to contribute. That’s why we’re committed to growing an inclusive workforce that promotes opportunities for all.

Oracle careers open the door to global opportunities where work-life balance flourishes. We offer competitive benefits based on parity and consistency and support our people with flexible medical, life insurance, and retirement options. We also encourage employees to give back to their communities through our volunteer programs.

We’re committed to including people with disabilities at all stages of the employment process. If you require accessibility assistance or accommodation for a disability at any point, let us know by emailing accommodation-request_mb@oracle.com or by calling +1 888 404 2494 in the United States.

Oracle is an Equal Employment Opportunity Employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, sexual orientation, gender identity, disability and protected veterans’ status, or any other characteristic protected by law. Oracle will consider for employment qualified applicants with arrest and conviction records pursuant to applicable law.

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