Machine Learning Engineer – Computer Vision

Biz-Tech Analytics

Delhi

On-site

INR 3,000,000 - 5,000,000

Full time

6 days ago
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Job summary

Biz-Tech Analytics is seeking a Senior Machine Learning Engineer / AI Project Manager to lead computer vision and ML initiatives from concept through production. You will own end-to-end AI/ML projects, define technical requirements, and manage cross-functional teams and clients.

The role requires hands-on ML/AI work with production deployment, strong leadership, and the ability to translate business needs into practical solutions for real-world applications.

Qualifications

  • 3+ years of experience in ML, CV, AI engineering or AI project management in production environments.
  • Strong proficiency in Python with PyTorch or TensorFlow, and OpenCV experience.
  • Proven experience leading technical teams and managing end-to-end AI/ML projects.
  • Ability to translate client requirements into technical specifications and roadmaps.

Responsibilities

  • Lead design, development, deployment, and optimization of CV/ML solutions for production.
  • Oversee object detection, tracking, image/video analysis, and visual inspection workflows.
  • Define technical approaches, architecture, datasets, evaluation, and deployment strategies.
  • Ensure MLOps practices, monitoring, versioning, and performance optimization.
  • Manage client communications, project milestones, risks, and delivery quality.

Skills

Python
PyTorch
TensorFlow
OpenCV
MLOps
Project Management
Team Leadership
Stakeholder Management

Tools

Git
Docker
Kubernetes
MLflow

Job description

At Biz-Tech Analytics, we build production-grade computer vision and AI-driven automation solutions. From visual quality control systems to workforce productivity intelligence, we focus on turning complex data into actionable insights through scalable AI infrastructure.

We are looking for a Senior Machine Learning Engineer / AI Project Manager who combines strong technical expertise in Computer Vision and Machine Learning with proven project management, product ownership, team leadership, and stakeholder management experience.

  • The ideal candidate should have hands-on experience working with AI/ML systems while also being capable of leading teams, managing end-to-end projects, coordinating technical execution, defining requirements, working with clients, and ensuring successful delivery of production-grade AI solutions.
Key Responsibilities
Technical & AI/ML Leadership
  • Lead the design, development, deployment, and optimisation of Computer Vision and Machine Learning solutions for real-world production applications.
  • Oversee solutions involving object detection, object tracking, human activity analysis, visual quality control, image/video analysis, facial recognition, and automated inspection systems.
  • Work closely with ML engineers and technical teams to define technical approaches, architecture, models, datasets, evaluation methods, and deployment strategies.
  • Review technical solutions and ensure that models meet requirements for accuracy, latency, scalability, reliability, and production performance.
  • Evaluate and introduce relevant Computer Vision and AI technologies, including Vision Transformers (ViTs), SAM, Grounding DINO, multimodal models, and Generative AI workflows.
  • Guide the development of image and video data pipelines across camera, sensor, edge, and cloud environments.
  • Ensure effective MLOps practices, including model deployment, monitoring, versioning, experimentation, and performance optimisation.
Project & Product Management
  • Own the end-to-end planning and execution of AI/ML projects, from initial problem definition and requirements gathering through development, deployment, and post-deployment monitoring.
  • Translate business and client requirements into clear technical requirements, project scopes, milestones, deliverables, and execution plans.
  • Work closely with engineering, data, product, and business teams to ensure projects remain aligned with objectives, timelines, and quality standards.
  • Define project priorities, dependencies, resources, timelines, and deliverables.
  • Track project progress, identify risks and blockers, and drive timely resolution with the relevant teams.
  • Manage multiple AI/ML projects and priorities simultaneously while ensuring effective resource allocation.
  • Participate in PoCs, product development, solution design, and client consulting engagements.
  • Help identify opportunities to convert AI/ML capabilities into scalable products and repeatable solutions.
  • Collaborate with stakeholders to define product requirements, success metrics, acceptance criteria, and expected business outcomes.
  • Lead and manage a team of ML Engineers, Computer Vision Engineers, and other technical contributors.
  • Mentor engineers and provide technical and project-level guidance throughout the development lifecycle.
  • Assign responsibilities based on team capabilities, project requirements, and timelines.
  • Conduct regular project and team reviews to track progress, quality, and performance.
  • Establish high technical and execution standards across the team.
  • Identify skill gaps and support team members through mentoring, knowledge sharing, and structured development.
  • Act as the bridge between technical teams, product/business stakeholders, and clients.
Client & Stakeholder Management
  • Work directly with clients and internal stakeholders to understand business problems and translate them into practical AI/ML solutions.
  • Lead technical discussions, requirement-gathering sessions, solution presentations, and project updates.
  • Communicate complex AI/ML concepts clearly to both technical and non-technical stakeholders.
  • Manage expectations around project scope, timelines, technical feasibility, and deliverables.
  • Present project progress, risks, outcomes, and recommendations to senior stakeholders.
  • Build strong working relationships with clients and internal teams throughout the project lifecycle.
Qualifications
  • 3+ years of experience working in Machine Learning, Computer Vision, AI Engineering, Technical Product Management, or AI/ML Project Management, with meaningful experience in production environments.
  • Strong understanding of Computer Vision and Machine Learning, including experience with areas such as object detection, tracking, image/video analysis, defect detection, facial recognition, or visual inspection.
  • Strong proficiency in Python and familiarity with frameworks and libraries such as PyTorch, TensorFlow, OpenCV, or equivalent.
  • Proven experience managing AI/ML projects or products from problem definition through development and production deployment.
  • Demonstrated experience in leading technical teams, mentoring engineers, allocating work, and managing project deliverables.
  • Strong understanding of MLOps, data pipelines, model deployment, cloud/edge infrastructure, and production ML systems.
  • Experience working with cross-functional teams including engineering, product, data, business, and client-facing teams.
  • Strong project management skills, including planning, prioritisation, resource management, risk management, timelines, and delivery tracking.
  • Ability to understand technical architecture and make informed decisions without necessarily being the primary hands-on developer for every component.
  • Excellent communication and stakeholder-management skills.
  • Comfortable working in a fast-paced, startup-like environment that requires ownership, adaptability, and independent problem-solving.
Good to Have
  • Experience managing or delivering vision-based automation projects in manufacturing, industrial, retail, logistics, or other operational environments.
  • Experience with real-time Computer Vision systems and edge AI.
  • Experience with Generative AI, Large Language Models (LLMs), and multimodal AI systems.
  • Experience building or managing multimodal AI pipelines combining vision, language, and structured data.
  • Experience with AI product management or taking AI capabilities from PoC to production product.
  • Understanding of AI governance, data privacy, compliance, security, and responsible AI practices.
  • Experience working directly with enterprise clients on AI consulting, solutioning, or implementation projects.
  • Familiarity with Agile/Scrum methodologies and project management tools.
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