Pearson

Lead Specialist, AI Scientist

Remote, Spain remote Entry Salary not listed
remote Technology & IT Curated
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About the role

AI Scientist / Engineer – Speech Language Model
Role Summary
The AI Scientist / Engineer – Speech Language Models leads the design, development, and
evaluation of AI systems for language assessment, real‑time feedback, and skills evaluation. The role
focuses on speech recognition, spoken language modeling, and automated scoring, ensuring models
are accurate, reliable, fair, and scalable across learner‑facing and hiring‑facing applications.
Key Responsibilities

Design, build, and improve speech language models for spoken response understanding,

pronunciation analysis, fluency, prosody, and communicative effectiveness.

Develop and evaluate automated scoring and feedback pipelines for speaking tasks used in:

oAI‑driven speaking practice with instant feedback (learner‑facing).
oJob‑relevant oral communication and soft‑skills assessments (hiring‑facing).

Train, fine‑tune, and evaluate acoustic models, cascading models, speech-to-speech models,

speech LMs, and scoring models, including neural and large language model–based
approaches.

Design experiments and conduct quantitative performance, reliability, and validity analyses to

ensure assessment quality and decision integrity.

Work across a range of speaking constructs such as interactional competence, pragmatic

competence, spoken critical thinking skills etc.

Perform detailed error analysis, intra- and inter-agent rater reliability studies on ASR outputs,

spoken features, and scoring behaviors to guide model and product improvements.

Collaborate with product, UX, and assessment scientists to integrate models into interactive

experiences such as practice simulations, and hiring workflows.

Apply responsible AI principles to speech systems, including fairness across accents, dialects,

and proficiency levels, as well as transparency of feedback and scores.

Support model monitoring and governance in production environments, ensuring ongoing

quality and compliance for high‑stakes use cases.

Act as the technical lead for an AI conversational assessment product, partnering closely with

a Product Manager to translate assessment goals, user needs, and business constraints into
model and system design decisions.•Shape end‑to‑end conversational assessment design (task structure, prompts, turn‑taking,
scoring logic, feedback timing) in collaboration with product and assessment stakeholders.

Balance assessment validity, user experience, system latency, and scalability when making

model and system design trade‑offs for production conversational assessments.
Required Skills & Qualifications

Master’s or PhD in Computer Science, Electrical Engineering, Speech & Language Processing,

Applied Linguistics, Language Assessment, or equivalent applied experience.

Hands‑on experience building speech recognition, spoken language understanding, or

automated scoring systems.

Strong programming skills in Python, with experience using PyTorch or similar ML

frameworks for speech and language modeling.

Solid grounding in machine learning, statistics, and experimental design, especially as applied

to model evaluation.

Experience with modern neural speech models and large language models, including

fine‑tuning and evaluation for spoken tasks.

Expertise in model evaluation metrics relevant to speech and assessment (accuracy, reliability,

validity, fairness).

Familiarity with responsible AI practices, including bias analysis, interpretability, and

governance for user‑impacting systems.

Strong communication skills, with the ability to explain model behavior and assessment

outcomes to technical and non‑technical stakeholders.

Experience working in cross‑functional product teams, contributing to roadmap decisions,

and shipping ML systems into production.
Nice‑to‑Have / Domain Alignment

Experience with spoken feedback systems, pronunciation scoring, fluency analysis, or

conversational AI.

Background in skills assessment, talent evaluation, or hiring platforms using AI‑based

decision support.

Familiarity with human‑in‑the‑loop evaluation, rater alignment, or psychometric concepts for

AI scoring systems.Impact of the Role
This role directly enables:

Learner‑facing speaking practice with immediate, actionable feedback powered by speech

LMs.

Hiring‑grade oral communication and skills assessments that support fair, data‑driven talent

decisions.

Scalable, responsible speech AI systems that balance technical excellence with assessment

validity.
Originally posted on Himalayas

Interview prep

Walk in with sharper answers.

Use this as a quick practice sheet before you speak with the employer.

Role
Technology & IT Python Specialist Scientist Technology remote

Likely questions

  1. Tell us about work you have done that is close to the Lead Specialist, AI Scientist role.
  2. How would you approach your first 30 days at Pearson?
  3. Which of Python, Specialist and Scientist have you used recently, and what did it help you achieve?
  4. Describe a time you solved a problem without waiting to be told exactly what to do.
  5. How do you stay organised and communicate clearly when working remotely?

Prepare before the call

  • A recent example that proves your experience with Python, Specialist and Scientist.
  • One short story with a problem, your action, and the result.
  • Two examples that show the strengths listed on your CV.
  • A clear reason why this role and company interest you.
  • Your availability, preferred work style, and salary expectations.

Ask them

  • What would success look like in the first 90 days?
  • What are the main problems this hire should help solve?
  • How does the team give feedback and measure good work?
  • What does a normal working week look like for this role?
Practice line

I am interested in the Lead Specialist, AI Scientist role because I can bring practical experience in Python, Specialist and Scientist, learn the team quickly, and contribute to the outcomes Pearson needs from this hire.

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