AI / ML Engineer (Remote)
Quick Summary
Job Title: AI/ML Engineer Job Summary We are seeking a highly skilled AI/ML Engineer to design, develop, and deploy scalable machine learning and deep learning solutions.
Design, develop, and optimize machine learning and deep learning models using PyTorch. Build and deploy computer vision solutions for real-world use cases.
Experience deploying ML models in production environments. Familiarity with containerization tools such as Docker and orchestration platforms like Kubernetes. Exposure to real-time or batch inference systems.
Responsibilities
~1 min read- →Design, develop, and optimize machine learning and deep learning models using PyTorch.
- →Build and deploy computer vision solutions for real-world use cases.
- →Develop end-to-end ML pipelines, including data ingestion, preprocessing, training, validation, and deployment.
- →Implement and maintain MLOps workflows for model versioning, monitoring, CI/CD, and retraining.
- →Deploy and scale ML models on AWS cloud infrastructure.
- →Work with large-scale datasets using Databricks and distributed computing frameworks.
- →Collaborate with data scientists, product managers, and software engineers to translate business requirements into AI solutions.
- →Ensure high code quality by following software engineering best practices (modular design, testing, documentation).
- →Monitor model performance in production and continuously improve accuracy, efficiency, and reliability.
Requirements
~1 min read- Strong proficiency in Python for machine learning and software development.
- Hands-on experience with PyTorch for deep learning model development.
- Solid understanding of deep learning architectures (CNNs, transfer learning, etc.).
- Practical experience in computer vision applications.
- Experience working with Databricks and large-scale data processing.
- Strong knowledge of AWS services for ML deployment (EC2, S3, SageMaker, etc.).
- Experience with MLOps tools and practices (model deployment, monitoring, CI/CD).
- Good understanding of software engineering principles and production-grade system design.
Requirements
~1 min read- Experience deploying ML models in production environments.
- Familiarity with containerization tools such as Docker and orchestration platforms like Kubernetes.
- Exposure to real-time or batch inference systems.
- Experience working in agile or fast-paced development environments.
Nice to Have
~1 min read- Experience with optimization and performance tuning of ML models.
- Knowledge of data security and compliance in cloud environments.
- Experience with monitoring tools for ML model performance and drift detection.
Location & Eligibility
Listing Details
- First seen
- May 6, 2026
- Last seen
- May 8, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 46%
- Scored at
- May 6, 2026
Signal breakdown
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