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Computer Vision Engineer

Rp8,000,000 - 13,000,000/Month
Contract · Hybrid
Minimum Associate Degree
1 - 3 years of experience

Job Requirements

Hybrid
1 - 3 years of experience
Minimum Associate Degree

Skills

Artificial Intelligence

Computer Vision

PostgreSQL

Deep Learning

MongoDB

Natural Language Processing (NLP)

Data Mining

Yolo

PyTorch

Machine Learning

Pandas

TensorFlow

This job post is managed by

TA
Talent Acquisition Devcode

Job description for Computer Vision Engineer at Devcode

Overview

We are looking for a Computer Vision Engineer who can assess the technical feasibility of offline (on-device / edge) image recognition solutions, build and deploy YOLO-based detection models end-to-end, and also work with cloud-based computer vision services such as AWS Rekognition. Prior hands-on experience taking an offline model from research to production deployment is highly valued.

Requirements:

• Bachelor's degree in Computer Science, Engineering, Mathematics, or a related field.

• Minimum 2-5 years of hands-on experience in computer vision / machine learning.

• Demonstrated portfolio or GitHub of past computer vision / object detection projects, ideally including at least one model taken to production or edge deployment.

• Solid understanding of mathematics relevant to computer vision (linear algebra, probability, optimization).

• Strong problem-solving and analytical skills, with the ability to independently judge project feasibility, effort, and risk.

• Good communication skills, able to explain technical trade-offs (offline vs. cloud-based) to non-technical stakeholders.

• Comfortable working cross-functionally with product and engineering teams.

• Willing to work on-site/hybrid Jakarta as needed for hardware testing and edge-device deployment (adjust based on company policy).

Key Responsibilities:

• Conduct technical feasibility assessments for offline image recognition needs: architecture selection, dataset size, compute/hardware requirements (edge device, GPU/CPU), latency, and storage constraints before development begins.

• Design, train, and optimize image recognition / object detection models based on YOLO that can run fully offline (on-device/edge, no dependency on internet/cloud connectivity).

• Perform data preparation, annotation, augmentation, and model evaluation (precision, recall, mAP, etc.).

• Optimize models for deployment (quantization, pruning, conversion to lightweight formats such as ONNX / TensorRT / TFLite) so they run efficiently on target devices.

• Handle end-to-end deployment of computer vision models to production/edge devices, including post-deployment monitoring and maintenance.

• Explore and implement cloud-based computer vision / image recognition solutions (e.g., AWS Rekognition, Azure Computer Vision, Google Vision AI) as alternatives or complements to offline solutions.

• Provide trade-off recommendations between offline (custom model) and cloud-based (managed service) solutions based on business needs, cost, data privacy, and infrastructure conditions.

• Collaborate with product/engineering teams to integrate CV solutions into broader systems.

• Document research processes, experiments, and evaluation results in a structured way.

Qualifications:

• Hands-on experience building computer vision / image recognition models using YOLO (or similar detection architectures).

• Proven, real experience building offline models — from research and training through to production/edge deployment (not just notebook-level experiments).

• Familiarity with cloud-based CV services such as AWS Rekognition (or equivalent), able to compare use cases against custom/offline solutions.

• Understanding of basic MLOps: model versioning, performance monitoring, retraining pipelines.

• Familiar with tools/frameworks: Python, PyTorch/TensorFlow, OpenCV, ONNX Runtime, Docker.

• Able to independently perform technical assessments (feasibility, effort, and risk) before project execution.

• Nice to have: experience with edge devices (Jetson, Raspberry Pi, etc.) or mobile deployment (TFLite/CoreML).

About the company
Devcode
Information Technology and Services
1 - 10 employees

Devcode adalah platform dinamis yang dirancang untuk menjembatani para pengembang pemula dengan dunia teknologi melalui tantangan coding dan sumber belajar. Devcode bertujuan untuk meningkatkan kemampuan coding dan berpikir logis komunitasnya, menyediakan lingkungan yang mendukung baik untuk pemula maupun programmer berpengalaman. Devcode adalah platform yang tepat untuk membuka potensi coding Anda sepenuhnya.

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