Padmi

Applied scientist

United StatesPosted 1 month ago
Software engineeringUnspecified
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Applied scientist JD

Role Overview: We are hiring Applied Scientists (1 Lead + 2 ICs) to design, build, and optimise GenAI-driven multi-modal pipelines for detecting contextual moments in live video streams. This role focuses on prompt engineering, multimodal inference, and model optimisation using foundation models (Claude, Nova, Bedrock) to maximise detection accuracy.

Key Responsibilities

Design and optimise prompt engineering strategies for foundation models

Build pipelines for multi-modal inference (video + transcript + audio)

Detect and classify custom moments and contextual events Develop reusable frameworks for:

Moment detection templates Structured metadata generation, Fine-tune prompts and configurations to improve:

Accuracy, Precision across moment types

Integrate GenAI outputs into: Structured JSON metadata, Downstream systems and pipelines

Work with AWS services such as: Amazon Bedrock (GenAI models)

Lambda, S3, Kinesis (data pipeline) Collaborate with QA team for output validation and optimisation, Support production rollout and continuous improvement

Required Skills & Experience:

Strong experience in:

Prompt engineering for foundation models (Claude, Nova, etc.).Multi-modal AI systems (vision + NLP).Hands-on experience with:

LLM inference and optimisation

Structured outputs (JSON generation and validation) Strong Python programming and data pipeline skills

Familiarity with AWS cloud stack: Bedrock, Lambda, S3, analytics pipeline

Experience in working with: Video analytics / media AI workflows Real-time or near real-time systems

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