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Job Details:
Job Description:
We are hiring a Data Scientist to partner with functional validation (FV) engineers and technologists to accelerate pre and post silicon validation through data driven methods.
You will design and deploy machine learning algorithms and generative AI-augmented analytics pipelines across bench, lab, and fleet data to improve debug efficiency, coverage quality, and execution predictability.
Key Responsibilities:
- Lead AI/ML strategy for Post Silicon (post Si) validation by defining technical direction, model architectures, and data foundations that scale across products and sites.
- Architect and drive end to end AI systems: data pipelines, feature stores, training workflows, inference services, and MLOps governance.
- Develop and deploy advanced AI models (e.g., transformers for time series/logs, anomaly detection, root cause prediction, clustering) to accelerate debug and reduce TTR.
- Apply LLMs and RAG to automate triage, summarize complex logs, and recommend next debug steps using historical knowledge.
- Partner with validation, design, FW/BIOS, ATE, and product engineering teams to influence debug methodology and integrate AI insights into execution workflows.
- Lead experimentation frameworks (DOE, A/B tests) to quantify the impact of test content, AI triage systems, and operational improvements.
- Contributed to lean, applied AI algorithms that improved validation efficiency and accelerated development for our next generation, leadership client products.
- Ensure compliance with Intel data governance, reproducibility, and MLOps hygiene best practices.
Qualifications:
Minimum Qualifications:
- Degree in Data Science, with at least 3 years of working experience on Data Science or AI Coding Experience.
- Master/PHD in Data Science, Computer Science, Electrical and Electronics/Computer Engineering, Statistics, or related technical field.
- Strong proficiency in Python, ML frameworks (Py Torch/Tensor Flow), and SQL.
- Demonstrated experience designing production grade ML systems (pipelines, training, deployment, monitoring).
- Solid grounding in statistics, time series analysis, experiment design, and algorithmic decision making.
- Proficiency in software engineering practices: Git, testing, CI/CD, packaging, API design, cloud/on prem data stacks.
- Proven ability to drive cross team technical alignment, communicate clearly, and influence technical partners.
Preferred Qualifications:
- Experience with pre and post silicon validation/lab environments, hardware telemetry, and debug artifacts; familiarity with functional validation workflows and KPIs.
- Expertise with transformer-based models, LLM fine tuning, RAG pipelines, or domain specific model adaptation (LoRA/PEFT).
- Strong background in anomaly detection, root cause modeling, graph ML, or large-scale triage automation.
- Hands on with distributed compute (Spark/Py Spark), MLOps frameworks (MLflow, model registry), and containerization (Docker).
- Ability to apply GenAI methods (search, summarization, triage) in debug or validation workflows.
- Experience building dashboards (Power BI/Tableau) and designing systems for scalable cross product reuse.
- Familiarity with synthetic data generation, bias/quality checks, and model interpretability (e.g SHAP).
Job Type:
Experienced Hire
Shift:
Shift 1 (Malaysia)
Primary Location:
Malaysia, Penang
Additional Locations:
Business group:
The Silicon Engineering Group (SIG) is a worldwide organization focused on the development and integration of SOCs, Cores, and critical IPs from architecture to manufacturing readiness that power Intel’s leadership products. This business group leverages an incomparable mix of experts with different backgrounds, cultures, perspectives, and experiences to unleash the most innovative, amazing, and exciting computing experiences.
Posting Statement:
All qualified applicants will receive consideration for employment without regard to race, color, religion, religious creed, sex, national origin, ancestry, age, physical or mental disability, medical condition, genetic information, military and veteran status, marital status, pregnancy, gender, gender expression, gender identity, sexual orientation, or any other characteristic protected by local law, regulation, or ordinance.
Position of Trust
N/A
Work Model for this Role
This role will be eligible for our hybrid work model which allows employees to split their time between working on-site at their assigned Intel site and off-site. Job posting details (such as work model, location or time type) are subject to change.
ADDITIONAL INFORMATION: Intel is committed to Responsible Business Alliance (RBA) compliance and ethical hiring practices. We do not charge any fees during our hiring process. Candidates should never be required to pay recruitment fees, medical examination fees, or any other charges as a condition of employment. If you are asked to pay any fees during our hiring process, please report this immediately to your recruiter.
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About Intel

Intel
PublicIntel inside.
120,000+
Employees
Santa Clara
Headquarters
$200B
Valuation
Reviews
3.5
3 reviews
Work Life Balance
3.0
Compensation
3.0
Culture
2.5
Career
2.5
Management
2.0
25%
Recommend to a Friend
Pros
Offers internship opportunities
Interview opportunities available
Cons
Major job cuts and layoffs
Spam emails after rejection
Poor communication practices
Salary Ranges
6 data points
Mid/L4
Principal/L7
Senior/L5
Staff/L6
Director
Mid/L4 · Data Scientist Grade 5
0 reports
$122,406
total / year
Base
-
Stock
-
Bonus
-
$104,045
$140,767
Interview Experience
2 interviews
Difficulty
3.0
/ 5
Duration
14-28 weeks
Interview Process
1
Application Review
2
Recruiter Screen
3
Technical Phone Screen
4
Onsite/Virtual Interviews
5
Team Matching
6
Offer
Common Questions
Coding/Algorithm
Technical Knowledge
Behavioral/STAR
System Design
Past Experience
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