Senior Engineering Manager, Conversational AI & Knowledge Intelligence

Apple Inc

Confirmed live yesterday Trusted

Quick summary

Work type
On-site
Location
Seattle, WA
Salary
$254,400–$381,600 / yr
Posted
13 days ago
Freshness
Confirmed live yesterday

Market check

Salary context

Above market

How this pay compares to similar roles

Similar $216k
This role $318k
$153k most similar roles pay here $406k

This role pays more than 92% of similar roles. Most pay $177,900–$254,750 — the shaded band above. At the midpoint, this role pays about $318k versus about $216k for comparable roles.

Based on 240 similar postings.

Employer

About Apple Inc

Apple Inc. is a multinational technology company known for designing and manufacturing consumer electronics, software, and online services, including the iPhone, Mac, iPad, and App Store. Industry: Consumer Electronics & Software

Apple Inc currently has 1984 open roles on FindRole.

Listed pay typically runs $175,000–$277,600 across 1590 roles with salary data.

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At a glance

TL;DR · Senior Engineering Manager, Conversational AI & Knowledge Intelligence

Senior Engineering Manager, Conversational AI & Knowledge Intelligence leads the engineering organization responsible for conversational AI, world knowledge question answering, retrieval-augmented generation (RAG), and knowledge intelligence. This role involves managing a team of machine learning engineers, software engineers, data engineers, and applied scientists to build scalable knowledge systems, LLM-powered reasoning capabilities, and retrieval infrastructure. The manager defines the vision and architecture for platforms powering Siri, Spotlight, Safari, and Apple Intelligence. Key responsibilities include developing knowledge pipelines for information synthesis, hallucination mitigation, and inference optimization across on-device and server-side frameworks. The role requires expertise in large language models (LLMs), natural language processing, distributed systems, vector databases, and knowledge graphs. The work focuses on creating accurate, grounded, and personalized responses by integrating proprietary knowledge graphs with trusted web content and state-of-the-art foundation models to improve conversational experience quality.

What does a Engineering Manager earn in Washington?

Median $267050 from 35 postings across 10 companies.

See salary data

What you'll do

  • Define the vision, architecture, and execution strategy for Conversational AI and Knowledge Intelligence platforms across the Apple ecosystem.
  • Lead end-to-end engineering and research for RAG, conversational reasoning, knowledge distillation, and LLM inference optimization.
  • Develop scalable pipelines to acquire, curate, and distill information from diverse sources into high-quality assets for large language models.
  • Partner with foundation model teams to improve retrieval quality, hallucination mitigation, and factual consistency of AI responses.
  • Build on-device and server-side software frameworks for low-latency, privacy-preserving, and cost-efficient LLM inference.
  • Mentor engineering managers and technical leaders while establishing long-term technical strategy and organizational direction.
  • Execute multi-year roadmaps to deliver high-quality products at Apple's scale across various internal product teams.

What we're looking for

  • MS or Ph.D. in Computer Science, Artificial Intelligence, Machine Learning, Information Retrieval, Natural Language Processing, or a related technical field.
  • 8+ years of experience leading large-scale engineering and machine learning organizations delivering AI-powered products in production.
  • Deep experience building conversational AI, search, question answering, knowledge systems, recommendation systems, or large-scale information retrieval platforms.
  • Strong technical expertise in large language models (LLMs), Retrieval-Augmented Generation (RAG), NLP, and distributed systems.
  • Demonstrated ability to define long-term technical strategy while executing complex cross-functional programs across multiple engineering organizations.
  • Expertise in modern LLM architectures, agentic AI, vector databases, knowledge graphs, and multi-stage retrieval and ranking systems.
  • Experience in LLM post-training, RLHF/RLAIF, reward modeling, model alignment, and production deployment of large-scale AI systems.
  • Proven ability to translate emerging AI technologies into impactful customer experiences while leading and mentoring high-performing engineering teams.

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Senior Engineering Manager, Conversational AI & Knowledge Intelligence

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