MLOps Engineer

Data Science UA

Dubai

On-site

AED 300,000 - 600,000

Full time

14 days+

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Job summary

Data Science UA is seeking a seasoned MLOps Engineer to design, deploy, and manage advanced ML systems with a focus on automation and reliability.

You will implement CI/CD pipelines, deploy AI models with robust monitoring, and collaborate with data scientists and software engineers to productionize ML workloads in a fast-paced environment.

Qualifications

  • Minimum 5 years in an MLOps engineer role or similar position.
  • Strong proficiency in Python and ML libraries (PyTorch, Hugging Face, Transformers).
  • Experience with engineering best practices and ML fundamentals.

Responsibilities

  • Implement and maintain CI/CD pipelines for AI/ML projects.
  • Set up reliable deployment strategies for AI models, incl. LLMs and RAG.
  • Monitor reliability, availability and performance of deployed models.
  • Collaborate with AI teams to productionize ML models and algorithms.
  • Promote version control, configuration management and testing for AI solutions.
  • Utilize MLOps tools and frameworks (Kubeflow, MLflow, TFX).
  • Set up infrastructure monitoring for ML workloads and SLAs.
  • Participate in on-call rotations following SRE practices.

Skills

Python
PyTorch
Hugging Face
Transformers
Machine Learning fundamentals

Tools

Apache Spark
Hadoop
Kafka
Cassandra
GCP BigQuery
AWS Redshift
Apache Beam
Apache Flink
Airflow
Argo Workflows
Kubeflow
MLflow
TensorFlow Extended (TFX)

Job description

About us

Data Science UA is a service company with strong data science and AI expertise. Our journey began in 2016 with the organization of the first Data Science UA conference, setting the foundation for our growth. Over the past 8 years, we have diligently fostered the largest Data Science Community in Eastern Europe, boasting a network of over 30,000 AI top engineers.

About the client

Our client is a leading innovator in artificial intelligence solutions, specializing in AI-driven chatbot technologies that revolutionize human-machine interactions.

About the role

We are looking for a highly skilled and experienced MLOps Engineer to join the team. This role is ideal for someone with strong expertise in designing, deploying, and managing advanced ML systems with a focus on automation and reliability.

Requirements
  • Minimum 5 years in an MLOps Engineer role or a similar position.
  • Strong proficiency in Python and related ML libraries (PyTorch, Hugging face, Transformers).
  • Extensive experience in implementing engineering best practices and a deep understanding of Machine Learning fundamentals.
  • Hands-on experience with technologies like Apache Spark (Spark SQL, MLlib/Spark ML) or similar big data frameworks and proficiency in tools such as Hadoop, Kafka, Cassandra, GCP BigQuery, AWS Redshift, Apache Beam, Apache Flink, etc.
  • Experience with automated data pipeline and workflow tools, such as Airflow, Argo Workflows, Kubeflow, etc.
  • Practical experience with major cloud providers, including AWS, GCP, or Azure.
  • Proficiency in one or more MLOps platforms/technologies such as AWS SageMaker, Azure ML, GCP Vertex AI, Databricks, MLFlow, Kubeflow, or TensorFlow Extended (TFX).
Would be a plus
  • Experience with Large Language Models (LLMs) and computer vision applications, including image generation tools, Speech-to-Text (STT), Speech-to-Speech (STS), and Text-to-Speech (TTP).
  • AWS, GCP, or Azure certifications are a strong advantage.
  • Ability to quickly adapt to new technologies and environments, with a startup mindset for handling ambiguity and fast-paced change.
Responsibilities
  • Implement and Maintain CI/CD Pipelines.
  • Set up and ensure smooth operation of continuous integration and continuous delivery for AI and machine learning projects.
  • Establish reliable strategies for deploying AI models, with a focus on LLMs (Large Language Models) and Retrieval-Augmented Generation (RAG).
  • Track deployed AI models' reliability, availability, and performance to ensure optimal operation.
  • Work closely with AI teams to transition machine learning models and algorithms into production environments efficiently.
  • Promote the use of version control, configuration management, and testing protocols for AI-driven solutions.
  • Utilize MLOps Tools.
  • Leverage frameworks such as Kubeflow, MLflow, or TensorFlow Extended (TFX) to manage the machine learning lifecycle, from experimentation to production.
  • Set up monitoring systems for infrastructure metrics and AI model performance to enable early issue detection.
  • Engage in on-call rotations using Site Reliability Engineering (SRE) principles to ensure uptime and meet service-level objectives (SLOs).
The company offers
  • A collaborative, innovative environment where your contributions make a difference.
  • The chance to work with a passionate team of data scientists, engineers, product managers, and designers.
  • A culture that values learning, growth, and the pursuit of excellence.

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