Senior Software Engineer - Regulatory AI & Connected Data

PVH (Tommy Hilfiger/Calvin Klein)

Cupertino (CA)

On-site

USD 180,000 - 250,000

Full time

14 days+

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Job summary

Apple's PACE organization seeks a Senior Software Engineer to design, build, and ship AI-powered software that augments compliance, analytics, and product safety workflows. You will apply secure engineering practices, build robust data pipelines, and drive continuous delivery with observability, ensuring scalable systems across regulated environments.

You will collaborate with domain experts to translate problems into scalable solutions, mentor teammates, and help shape the engineering culture

Qualifications

  • Master's degree in Computer Science, Computer Engineering, or equivalent.
  • Experience in regulated industries and compliance-focused software.
  • Strong background in AI/ML systems and data pipelines.
  • Proficient in secure software practices and CI/CD.
  • Experience with MLOps, model versioning, and production monitoring.
  • Familiarity with retrieval-augmented generation and prompt engineering.
  • Track record of building scalable data integrations in enterprise settings.
  • Excellent collaboration and communication skills.

Responsibilities

  • Design, build, and ship AI-powered software to improve team efficiency.
  • Develop robust data pipelines with data quality and lineage.
  • Implement secure engineering practices and governance.
  • Collaborate with domain experts to translate problems into scalable solutions.
  • Contribute to continuous delivery, observability, and production readiness.

Skills

AI systems
Data pipelines
Security & compliance
MLOps
LLM patterns
CI/CD
Observability
Experiment tracking
Prompt engineering
Retrieval-augmented generation

Education

Master's degree in CS/related field

Tools

Python
CI/CD tools

Job description

At Apple, the Product Analysis and Compliance Engineering (PACE) organization ensures that every product we ship meets the highest standards of regulatory compliance, product safety, and analytical rigor. We operate at the intersection of engineering, compliance, and data, delivering the insights, testing, and certification workflows that Apple's product programs depend on. Our teams navigate complex regulatory landscapes across dozens of global markets, managing a volume and velocity of compliance work that grows with every product Apple ships.

PACE is building intelligent systems at the intersection of AI, connected data, and compliance, making the organization dramatically more efficient. Our work connects disparate data sources, applies AI to extract insight and automate decision-making, and puts powerful tools directly in the hands of compliance engineers and analysts. We are seeking a Software Engineer who believes the best way to build great software is to ship early, measure relentlessly, and iterate based on real feedback and real data.

Description

As a Senior Software Engineer on this team, you will design, build, and ship software systems that apply AI to to improve the efficiency of the PACE team. You will work in small iterations, delivering working software early and often, and use data to guide what to build next. You believe that quality is built in - not bolted on - and that fast delivery and high standards reinforce each other. You will help establish the engineering culture of a new team: lean practices, continuous delivery, production observability, and a relentless focus on outcomes over output. You are deeply curious - about about emerging AI capabilities, how users actually work, and how to make tools to enable success - and you channel that curiosity into building things that matter. You will collaborate closely with PACE domain experts to deeply understand their problems, and with data and AI practitioners to build systems that genuinely work at scale.

Responsibilities
  • Design, build, and ship AI-powered software systems that improve team efficiency, delivering incrementally and iterating based on user feedback
  • Apply secure engineering practices throughout: secrets management, data classification, access control, and audit logging appropriate for compliance-sensitive data
  • Build and maintain robust data pipelines that connect corporate data sources, ensuring data quality, lineage, and accessibility
  • Effectively use & improve leading agentic harnesses to build software with your principles, through the development of skills, agents and MCPs
  • Integrate AI and large language models into production systems with appropriate evaluation, guardrails, and monitoring - treating models as components, not magic.
  • Ensure that there is an audit trail for traceability/lineage for AI/LLM based decisions
  • Establish and maintain continuous delivery pipelines, optimizing for the DORA metrics: deployment frequency, lead time, change failure rate, and mean time to recovery
  • Build observability into every system from day one - instrumentation, structured logging, alerting, and dashboards that give the team confidence to ship fast
  • Write clean, testable, well-factored code; practice continuous integration, continuous refactoring, and small batch delivery as daily habits
  • Actively explore the PACE team's domain, emerging tools, and adjacent problem spaces - bring new ideas and challenge assumptions
  • Work directly with PACE team's domain experts to understand problems deeply before building solutions
  • Collaborate across teams and organizations to integrate data sources and align on technical direction
  • Contribute to the engineering culture of a new team - shaping practices, running retrospectives, and helping the team continuously improve
  • Represent your work through demos, design discussions, and clear written communication
Preferred Qualifications
  • Master's degree in Computer Science, Computer Engineering, related field, or equivalent work experience
  • Experience working in or building software for regulated industries (compliance, legal, safety, or similar domain)
  • Familiarity with the principles in Accelerate and practical experience improving DORA metrics in a team setting
  • Experience with test-driven development, continuous refactoring, small batch delivery, and collective code ownership
  • Experience securing AI/LLM systems that process sensitive or regulated data, including prompt injection defense, data handling policies, and audit trail requirements
  • Experience with LLM application patterns: retrieval-augmented generation, prompt engineering, evaluation frameworks, and human-in-the-loop workflows
  • Experience with MLOps practices including model versioning, experiment tracking, and performance monitoring in production
  • Track record of building systems that connect and make sense of heterogeneous data sources at enterprise scale
  • Experience helping establish engineering culture on a new or trans
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