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Staff AI Engineer (Data & Intelligence function)

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Remote from
USA
Salary
USD 150k–200k / yr
Employment
Full Time
Experience
Senior
Published
Apply before
5 Nov 2026
Listing views
14
Application actions
1
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AI Summary

The role, at a glance.

Acquia is seeking a hands-on Staff AI Engineer to build production-grade retrieval, inference, and agentic workflow systems on top of its enterprise data platform. The role centers on semantic and graph retrieval, AI evaluation and observability, lakehouse-based data processing, and converting customer signals into actionable workflows. This senior individual contributor will work across observability, data platform, and intelligence functions while establishing reusable engineering patterns for multiple teams. Candidates need extensive software engineering and production AI/ML experience, with particular strength in Python, SQL, distributed data systems, cloud deployment, and agentic architectures. The role suits an adaptable technical leader who can ship quickly, manage inference costs, and communicate system design to both engineering and executive stakeholders.

Role DNA

A quick view of the complexity, pace, ownership and collaboration implied by the job description.

Job Complexity

5/5
EasyHard

Pace & Pressure

5/5
RelaxedFast-paced

Autonomy Level

5/5
GuidedFull ownership

Communication Load

5/5
IndependentCollaborative
AI insightThis is a high-scope staff-level role requiring deep production expertise across AI systems, distributed data platforms, retrieval, workflow orchestration, evaluation, and cloud operations. The engineer is expected to independently define technical approaches, ship shared capabilities quickly, and influence both technical and business stakeholders.

Salary analysis

Estimated compensation compared with the broader US market for similar roles.

Estimated job medianMarket rate
$175,000
US market range$160k–$230k
AI insightThe disclosed annual pay range is $150,000 to $200,000 USD, producing a job median of $175,000. A competitive US market range for a staff-level AI engineer with production ML, retrieval, agentic systems, and data-platform responsibility is approximately $160,000 to $230,000 annually; total compensation may be higher where equity or bonuses apply.

Core skills

Skills and capabilities most closely associated with this opportunity.

Sample interview questions
How would you design a system that lets an AI agent retrieve a customer's complete context in a single request?

I would start by defining the customer entity and its key relationships across product, usage, support, entitlement, and commercial data. I would build a governed entity-resolution layer, combine structured lookups with hybrid vector and graph retrieval, and expose the result through a versioned service contract. I would measure latency, recall, precision, freshness, and downstream task success before expanding the capability.

How do you decide whether a workload should use deterministic code, a small model, or a large language model?

I assess the required accuracy, input variability, explainability, latency, volume, and cost profile. Deterministic code is preferable for stable rules and calculations, while small or fine-tuned models work well for high-volume bounded classification tasks. I reserve large models for ambiguous reasoning or generative tasks, then continuously evaluate whether observed patterns can be distilled into cheaper and more reliable components.

Describe your approach to evaluating and observing an agentic workflow in production.

I would define task-specific offline datasets and measurable success criteria before launch, including tool-selection accuracy, factuality, policy compliance, latency, cost, and human-review outcomes. In production, I would trace prompts, model versions, tool calls, retrieved context, state transitions, and final actions with privacy-aware logging. I would use alerts for regressions and regularly sample failures to improve prompts, retrieval, tools, and test datasets.

How would you process large Iceberg-lakehouse datasets to generate customer signals such as churn risk?

I would use SQL and dbt to create tested, documented feature models with incremental processing and partition-aware query patterns. Signal generation would run through durable orchestration, write scored outputs and provenance back to governed tables, and publish a stable contract for consuming teams. I would monitor data freshness, feature drift, model performance, query cost, and the business outcomes of resulting interventions.

How do you influence engineering standards as a senior individual contributor without relying on management authority?

I lead through clear technical designs, high-quality implementations, practical documentation, and reusable reference patterns that make the preferred path easier for other teams. I involve partner teams early, explain trade-offs in business terms, and create feedback loops through design reviews and operational metrics. Consistently delivering reliable systems builds trust and creates organic mentorship opportunities.

This analysis is generated from the job description. Salary estimates, role characteristics and sample answers are guidance, not employer-provided facts.
Opportunity details

About this role.

About Acquia

Acquia empowers the world’s most ambitious brands to create digital customer experiences that matter. With open source Drupal at its core, the Acquia Digital Experience Platform (DXP) enables marketers, developers, and IT operations teams at thousands of global organizations to rapidly compose and deploy digital products and services that engage customers, enhance conversions, and help businesses stand out.

Headquartered in Boston, MA, Acquia is a Great Place to Work-Certified™ company, is listed as one of the world’s top software companies by The Software Report, and is positioned as a market leader by the analyst community. We are Acquia. We are building for the future and we want you to be a part of it!

Career Exploration at Acquia

Our recruitment process is designed to empower you in making the most informed decisions. Acquia is committed to providing an inclusive, transparent, efficient, and educational interview experience that cultivates exploration into career opportunities at Acquia

You will discover the opportunity to grow your career here and learn from a global team that empowers you to exceed boundaries and achieve the extraordinary.

Acquia is the digital experience platform built for a world where your audience isn’t only human. Its agents too.

As AI agents become active participants in how people discover, consume, and act on digital content, Acquia gives enterprise teams the platform to create, manage, and distribute experiences designed for both. Powered by agentic AI that orchestrates — not just advises — Acquia automates complex digital workflows within the governance guardrails large organizations require.

The world’s #1 Drupal hosting provider, Acquia brings together Content Management, Digital Asset Management, and Product Information Management in a single AI-powered Command Center: Acquia Source.

Acquia. Built for every audience, human or otherwise.

The Role: Acquia is seeking a Staff AI Engineer to join our Data & Intelligence function. Acquia runs one of the largest Drupal and digital experience footprints in the world, and holds more than a decade of operational, product, and customer data across it. This role exists to put that data to work: building the retrieval, graph, and inference layers on top of our data platform, and the agentic and deterministic systems that turn the resulting signals into action for our customers and our teams.

The remit is broad. Our function spans observability, our core data platform, and insights and intelligence, and you will work across all three alongside the product and platform teams that consume what we build. Scope moves with company priorities, so we are looking for someone comfortable changing context and picking up an unfamiliar problem. Much of what you build will be shared capability that several teams depend on.

This is a hands-on engineering role. You will spend most of your time designing, building, and shipping production systems, and you will lift the AI engineering capability of the teams around you through the quality of your work rather than through management overhead. We ship early and iterate.

Key Responsibilities

  • Write and ship production AI code daily. You are an active contributor.
  • Lead our work on making customer context retrievable at speed, across semantic retrieval, indexing, and knowledge graph approaches over our data platform. An early priority is letting an agent resolve a customer and pull its full context in a single request. Where that work goes from there is partly yours to define.
  • Build the inference and signal layer: models and processors that read from our Iceberg-based lakehouse, write scored inference back, and expose signals through contracts other teams can build against.
  • Take signals through to action, turning detected conditions such as churn risk, usage and entitlement mismatch, or expansion opportunity into workflows that act, with human review where that is the right design.
  • Choose the right tool for each workload: a large model, a small fine-tuned model, or ordinary deterministic code. Managing inference cost is part of the job.
  • Own evaluation and observability for our AI systems, so we can show a signal is sound before anyone acts on it.
  • Set the patterns other teams build against, and work with engineering and business leaders to turn company goals into shipped systems.

How We Think About Experience

We are more interested in how you learn than in the tools already on your CV. Our stack spans Python, SQL and dbt, distributed query engines, durable workflow orchestration, an Iceberg lakehouse on S3, and a changing mix of model providers and agent frameworks. It will look different in a year. We expect you to arrive without deep expertise in some of it and to close that gap fast, using AI to read unfamiliar codebases and get to a useful contribution before you are fully fluent. Range across languages, data platforms, and model providers counts for more with us than years inside any single one.

Required Experience

  • 8+ years of software engineering, including 3+ years shipping AI or ML systems to production.
  • Strong programming fundamentals and deep proficiency in at least one language used for AI and data work. Python is our primary language for ML and insights.
  • Fluency working with data at scale — advanced SQL, a transformation layer such as dbt, and a distributed query engine over lakehouse or warehouse storage, including reasoning about query cost and partitioning.
  • Production retrieval and context engineering — embeddings, vector search, hybrid or graph retrieval, and measuring whether retrieval is actually working. Experience modelling entities and relationships across multi-source data is valuable here.
  • Agentic systems and durable workflows in production, with tool calling, state and memory, and human-in-the-loop patterns. We use Temporal and LangGraph; equivalent experience transfers.
  • Evaluation and observability for AI systems — tracing, prompt and version management, and dataset-driven testing, whatever the tooling.
  • Cloud deployment experience (AWS preferred) with containerized services, and ownership of inference cost.
  • B.S. in Computer Science or equivalent practical experience.

Desired Skills

  • Experience standing up shared data or ML capability that other teams then built on.
  • Small and fine-tuned model work, including distilling task-specific models to replace general-model calls at scale.
  • Observability data fluency: OpenTelemetry, and logs, metrics and traces at very high volume, including what it takes to make that data queryable.
  • Data governance instincts around access control, lineage, and data residency, treated as part of the design.
  • Enterprise SaaS or CMS, including familiarity with Acquia’s Drupal-based DXP.
  • Agentic development workflow fluency: AI-assisted coding tools (Claude, Cursor, Copilot) as everyday accelerators, and MCP or similar for connecting agents to real systems.
  • Strong communication skills — able to present AI system design to both engineers and C-suite stakeholders.
  • Senior IC track record — known for the quality of your own code and system designs, with mentoring that happens organically through great work, not through meetings.

We are an organization that embraces innovation and the potential of AI to enhance our processes and improve our work. We are always looking for individuals who are open to learning new technologies and collaborating with AI tools to achieve our goals.

Acquia is proud to provide best-in-class benefits to help our employees and their families maintain a healthy body and mind. Core Benefits include: competitive healthcare coverage, wellness programs, take it when you need it time off, parental leave, recognition programs, and much more!

Acquia is an equal opportunity (EEO) employer. Qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, disability, protected veterans status or any other protected status or characteristic under federal, state or local law unrelated to the ability to perform the job.

We are seeking an AI-Native candidate who treats AI not as an external tool, but as a fundamental extension of their cognitive workflow. The ideal candidate possesses an orchestration mindset—the ability to skillfully prompt, manage, and direct AI to navigate complexity—and maintains a high degree of AI fluency.

You should be characterized by radical adaptability and a “builder” mentality, showing a restless drive to transform traditional work processes into agentic workflows. Beyond technical proficiency, we value intellectual humility: the willingness to constantly unlearn old methods in favor of more efficient, AI-augmented processes. You don’t just use AI to do your job; you use it to redefine what your job can achieve.

Pay Range

$150,000—$200,000 USD

Apply now >

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