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MLE ; Biometrics

Job in 305022, Pushkar, Rajasthan, India
Listing for: Talentoj
Full Time position
Listed on 2026-09-09
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Engineering
Job Description & How to Apply Below
Position: MLE 4 (Biometrics)
Location: Pushkar

Roles and Responsibility
- Lead the design and development of computer vision systems for biometrics (face attributes,
detection, quality, and recognition)
Rigorous fairness analysis and benchmarking of biometric models across various datasets and
operating conditions.
Architect, train, and optimize models using PyTorch, Tensorflow, and/or JAX
Own and evolve end-to-end ML pipelines, from data ingestion to deployment.
Design automated pipelines (Airflow) for data ingestion and cleaning. You will be responsible for curating balanced training sets and generating synthetic data to address both quality and diversity gaps.
Production Engineering:
Own the path to production. Optimize models for low-latency inference (quantization, distillation, TensorRT/ONNX) and manage deployment on AWS.
Mentor ML engineers, conduct code/design reviews, and drive technical best practices across the Computer Vision team.

What We’re Looking For

Experience:

5+ years of industry experience in Machine Learning, with at least 3 years dedicated to Biometrics or Face Analysis.
Deep expertise in computer vision and biometrics, especially face recognition.
Fairness & Ethics:
You understand the sources of algorithmic bias in Computer Vision and have
practical experience measuring and mitigating disparate impact.
Strong Engineering:
Expert proficiency in Python (both machine learning and vision libraries such as Pillow, OpenCV, PyTorch, etc).
You write clean, modular, production-ready code. Systems Architecture:
Experience designing end-to-end ML pipelines (Data to Train to Deploy) and working with workflow orchestrators like Airflow.
Cloud Native:
Hands-on experience scaling training jobs on multi-GPU clusters and deploying services on AWS (Sage Maker, EC2, EKS).
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