Associate Architect
Actively Reviewing the ApplicationsMyCareernet
Bengaluru, Karnataka, India
Full-Time
Remote
Posted 4 months ago
•
Apply by May 5, 2026
Job Description
Key Skills:
MLOps, Machine Learning, Distributed Systems, Python, PyTorch, TensorFlow, Kubernetes, Azure
Roles and Responsibilities:
Architectural Leadership:
Define and own the technical roadmap and architecture for the end-to-end MLOps lifecycle -- from data ingestion and feature engineering to model deployment and monitoring.
System Design:
Build highly scalable, reliable, and cost-efficient distributed systems for model training, inference, and serving, including core components such as
feature stores, model registries
, and
experiment tracking
.
Technical Evangelism:
Promote best practices in MLOps, software design, and scalable system development. Mentor senior ML engineers to solve complex technical challenges.
Innovation & R&D:
Stay updated on advancements in
AI/ML, Generative AI, and cloud computing (Azure/GCP)
. Lead R&D initiatives to integrate new technologies that solve unique business challenges.
Cross-Functional Collaboration:
Partner with
Data Scientists
to understand modeling requirements and translate them into scalable and efficient platform capabilities.
Performance & Cost Optimization:
Oversee the performance, scalability, and cost management of ML workloads on the cloud, proactively resolving bottlenecks and optimizing GPU and compute utilization.
Skills Required:
Experience:
10+ years in software engineering, including 5+ years as a hands-on ML Engineer, and 3+ years in architecting or leading ML platform initiatives.
MLOps Expertise:
Hands-on experience designing and managing the full ML lifecycle in production environments.
Data Engineering:
Strong knowledge of distributed data processing tools (
Apache Spark, Kafka
) and
feature store
development.
Orchestration & Deployment:
Proficient with
Docker, Kubernetes, CI/CD
, and automated model deployment pipelines.
ML Frameworks:
Deep experience with
PyTorch, TensorFlow, scikit-learn
, and related ML libraries.
Cloud Proficiency:
Expertise in
Microsoft Azure
(preferred) or
GCP
, with a solid grasp of distributed systems design and cloud cost optimization.
Technical Leadership:
Proven ability to lead technical teams, establish architectural standards, and influence strategic decisions.
Generative AI:
Practical exposure to
LLMs, RAG, fine-tuning, and vector databases
.
Domain Expertise:
Prior experience in
E-commerce AI/ML applications
such as recommendation systems, computer vision, search ranking, or supply chain optimization is highly desirable.
Education:
Bachelor or Master degree in Computer Science, Engineering, or a related technical field.
Required Skills
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