Applied Science Manager

Amazon Entertainment

Bengaluru

On-site

INR 4,500,000 - 7,000,000

Full time

14 days+

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Job summary

Amazon Entertainment seeks an Applied Science Manager to lead a team of scientists building next-generation content moderation intelligence. You will own the science roadmap for a high-impact automation program in Amazon Advertising, shaping how multimodal understanding and LLM-based reasoning come together in a production system.

You will mentor researchers, set experimentation standards, and partner with engineering, product, and operations to translate research into measurable automation

Qualifications

  • 8+ years of applied research experience.
  • 4+ years of scientific or machine learning engineer management experience.
  • PhD or master's degree and 8+ years of applied research experience.
  • Experience programming in Java, C++, Python, or a related language.
  • Experience in several of the following areas: machine learning, statistics, deep learning, natural language processing, or information retrieval.
  • 4+ years in managing a team of 5-15 members.

Responsibilities

  • Lead a team of applied scientists working across multimodal ML, large-scale retrieval systems, and generative AI.
  • Define the science strategy for ad trust.
  • Own end-to-end delivery of ML solutions from problem formulation to production deployment.
  • Build and grow scientists, mentor, and develop team members; foster publication culture.
  • Partner with engineering, product, and operations to translate science investments into measurable automation improvements.
  • Communicate science strategy and results to senior leadership.

Skills

Applied research
Management experience
Programming Java/C++/Python
Multimodal ML
NLP/IR
Team leadership
Publications in ML/AI venues

Education

PhD or master's degree

Job description

We are seeking an Applied Science Manager to lead a team of applied scientists building next-generation content moderation intelligence. You will own the science roadmap for one of the highest-impact automation programs in Amazon Advertising, defining how multimodal content understanding, retrieval-first classification, and LLM-based reasoning combine into a production system that serves global advertising at scale.

Responsibilities:
  • Lead a team of applied scientists working across multimodal ML (vision-language models, video understanding), large-scale retrieval systems (embedding-based similarity and deduplication), and generative AI (LLM-based policy reasoning, knowledge distillation, agentic architectures, and reinforcement learning).
  • Define the science strategy for ad trust.
  • Own end-to-end delivery of ML solutions: problem formulation, offline experimentation, online A/B testing, and production deployment. Your models directly move automation and defect metrics reported to senior leadership.
  • Build and grow scientists hired, mentor, and develop team members. Raise the science bar through structured review processes and a publication culture within Amazon.
  • Partner with engineering, product, and operations teams to translate science investments into measurable automation improvements. Influence roadmaps across dependent teams.
  • Communicate science strategy and results to senior leadership through narratives, technical deep-dives, and roadmap documents.
Requirements:
  • 8+ years of applied research experience.
  • 4+ years of scientific or machine learning engineer management experience.
  • PhD or master's degree and 8+ years of applied research experience.
  • Experience programming in Java, C++, Python, or a related language.
  • Experience in several of the following areas: machine learning, statistics, deep learning, natural language processing, or information retrieval.
  • 4+ years in managing a team of 5-15 members.
Preferred qualifications:
  • Experience building production ML systems at the Internet scale, especially involving multimodal deep learning, generative AI, or large-scale retrieval.
  • Track record of delivering automation or classification systems with measurable business impact.
  • Experience with content moderation, trust and safety, or policy enforcement systems.
  • Publications in top-tier ML/AI venues (NeurIPS, ICML, CVPR, KDD, ACL, AAAI).
  • Experience with LLMs (fine-tuning, distillation, RLHF, and prompt engineering).
  • Demonstrated ability to define and drive science roadmaps that influence product and business strategy.
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