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Generative Recommendation Algorithm Engineer (large models) - Location Product Job Opening In Singapore, Singapore – Now Hiring TikTok

Generative Recommendation Algorithm Engineer (large models) Location Product

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Job description

TikTok-Data Video Recommendation Team is responsible for the personalized recommendation algorithms for TikTok's hundreds of millions of global users.

Here, you will collaborate with top algorithm engineers in the industry, leveraging your expertise in deep learning, recommendation algorithms, and large models to continuously transform and enhance the TikTok user experience and content ecosystem.
In particular, the local service recommendation team focuses on targeting user experience and transaction scale optimization for lifestyle service content, including hotels, travel, dining, and more.

This role aims to pioneer new content and revenue streams for the company.

About TikTok Location Products
We creatively connect various products and services related to life through various products such as Points of Interest (POI), videos, LIVE, and search, making users' daily life experiences richer, more unique, and innovative.

At the same time, we will also create a business environment which is inclusive and fair, helping businesses, service providers, creators, and other stakeholders to continuously generate more income and improve service efficiency.

We firmly believe that through innovation and efforts in life services, we can jointly shape a better and more fulfilling life.

Responsibilities:
This role focuses on recommendation algorithms for international short video-based local services.

The work involves optimizing large-scale recommendation algorithms, solving complex constraint optimization problems, improving algorithms across various academic fields such as content understanding, LLM applications, CV/NLP, exploring new business directions, designing and implementing recommendation system architectures for multiple scenarios, and conducting in-depth analysis of product data.
Here, you will have the opportunity to deeply explore the optimization and enhancement of machine learning algorithms and engage with the most cutting-edge recommendation system architectures and large recommendation models in the industry.
The project is driven by technological innovation and aims to revolutionize the longstanding paradigms of recommendation model structures and infrastructure (Infra) by exploring large model solutions in the recommendation domain.

These innovations will be applied across various international local service scenarios.

The project encompasses research directions such as scaling up recommendation model parameters, cross-modal alignment and unified representation learning (including recommendation, multi-modal content, and natural language), ultra-long sequence modeling, and generative recommendation models, with the goal of systematically upgrading models used in international local services recommendation scenarios.



Minimum Qualifications:
1.

Solid foundation in machine learning and programming skills, with in-depth research experience in machine learning, NLP, CV, and proficiency in core algorithms and data structures;
2.

Prior experience in generative + search advertising projects (., TIGER generative recall, LRM generative prediction, generative bidding, is a strong plus;
2.

Experience or interest in modeling and aligning multi-modal information such as visual, text, and audio to enhance content understanding and user intent matching, driving the recommendation system toward deeper semantic understanding;
4.

Candidates with prior experience in generative recommendation or search advertising projects, or those highly passionate about generative technologies (., TIGER generative recall, LargeRecModel generative prediction, OneRec unified generative prediction, AIGB generative bidding), will be given priority;
5.

Publications in top-tier international conferences are a strong plus, including but not limited to KDD, SIGIR, RecSys, ACL, and NeurIPS;
6.

Strong analytical and problem-solving abilities, a passion for technology, and enthusiasm for tackling challenging problems and driving innovations.

Required Skill Profession

Computer Occupations


  • Job Details

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The Work Culture

An organization's rules and standards set how people should be treated in the office and how different situations should be handled. The work culture at TikTok adheres to the cultural norms as outlined by Expertini.

The fundamental ethical values are:

1. Independence

2. Loyalty

3. Impartiapty

4. Integrity

5. Accountabipty

6. Respect for human rights

7. Obeying Singapore laws and regulations

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The average salary range for a varies, but the pay scale is rated "Standard" in Singapore. Salary levels may vary depending on your industry, experience, and skills. It's essential to research and negotiate effectively. We advise reading the full job specification before proceeding with the application to understand the salary package.

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Key qualifications for Generative Recommendation Algorithm Engineer (large models) Location Product typically include Computer Occupations and a list of qualifications and expertise as mentioned in the job specification. The generic skills are mostly outlined by the . Be sure to check the specific job listing for detailed requirements and qualifications.

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Interview Tips for Generative Recommendation Algorithm Engineer (large models) Location Product Job Success

TikTok interview tips for Generative Recommendation Algorithm Engineer (large models)   Location Product

Here are some tips to help you prepare for and ace your Generative Recommendation Algorithm Engineer (large models) Location Product job interview:

Before the Interview:

Research: Learn about the TikTok's mission, values, products, and the specific job requirements and get further information about

Other Openings

Practice: Prepare answers to common interview questions and rehearse using the STAR method (Situation, Task, Action, Result) to showcase your skills and experiences.

Dress Professionally: Choose attire appropriate for the company culture.

Prepare Questions: Show your interest by having thoughtful questions for the interviewer.

Plan Your Commute: Allow ample time to arrive on time and avoid feeling rushed.

During the Interview:

Be Punctual: Arrive on time to demonstrate professionalism and respect.

Make a Great First Impression: Greet the interviewer with a handshake, smile, and eye contact.

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Answer Thoughtfully: Listen carefully, take a moment to formulate clear and concise responses. Highlight relevant skills and experiences using the STAR method.

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Follow Up: Send a thank-you email to the interviewer within 24 hours.

Additional Tips:

Be Yourself: Let your personality shine through while maintaining professionalism.

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Turn Off Phone: Avoid distractions during the interview.

Final Thought:

To prepare for your Generative Recommendation Algorithm Engineer (large models) Location Product interview at TikTok, research the company, understand the job requirements, and practice common interview questions.

Highlight your leadership skills, achievements, and strategic thinking abilities. Be prepared to discuss your experience with HR, including your approach to meeting targets as a team player. Additionally, review the TikTok's products or services and be prepared to discuss how you can contribute to their success.

By following these tips, you can increase your chances of making a positive impression and landing the job!

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