Data Scientist

ELLIOTT MOSS CONSULTING PTE. LTD.

Singapore

On-site

SGD 120,000 - 180,000

Full time

10 days ago
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Job summary

Elliott Moss Consulting Pte. Ltd. is seeking an experienced Data Scientist to lead strategic Data Science and AI initiatives, delivering data-driven solutions for complex business problems in a housing-focused context.

You will collaborate with IT, data engineering, and business units to deploy end-to-end ML/AI systems on cloud platforms such as AWS. The role requires 5+ years in Data Science/ML, strong MLOps knowledge, and hands-on experience with LLMs, Generative AI, and vector databases.

Qualifications

  • 5+ years of professional experience in Data Science, ML, AI, or a closely related field.
  • Bachelor's or master's degree in computer science, Data Science, Statistics, Mathematics, Engineering, or another relevant quantitative discipline.
  • Strong problem-solving capabilities with MECE, root cause analysis, and hypothesis-driven problem solving.
  • Strong understanding of MLOps principles and end-to-end model development, deployment, monitoring, and lifecycle management.
  • Strong experience deploying ML/AI solutions in AWS.
  • Theoretical and practical knowledge of ML/DL algorithms and architectures including transformers, reinforcement learning, statistics, optimization, and multi-criteria decision analysis.
  • Hands-on experience in AI Engineering: LLMs, Generative AI, neural embeddings, vector databases, LangChain/LangGraph.
  • Experience with data engineering for Data Science: ELT concepts, structured data transformation, database technologies, data preparation.
  • Strong programming in Python, R, SQL, Shell.
  • Strong communication and stakeholder management; data visualization and presentation.
  • Strong team collaboration, peer-review, and continuous improvement.

Responsibilities

  • Work on strategic Data Science and AI projects using advanced analytics and ML techniques.
  • Identify opportunities and create high-impact, business-focused solutions.
  • Develop, deploy, and monitor ML/AI solutions with ML Ops.
  • Ensure data quality, efficiency, and scalability of solutions.
  • Collaborate with IT, data engineering, and business units to meet requirements.
  • Translate business challenges into analytical and technical requirements; present insights.
  • Stay current with AI developments and emerging tools and practices.
  • Review peers' work and contribute to best practices.

Skills

Data Science
Python
R
SQL
Shell scripting
MECE framework
Root cause analysis
Hypothesis testing
MLOps
AWS
LLMs
Generative AI
Neural embeddings
Vector databases
LangChain
LangGraph
Data engineering
Communication

Education

Bachelor's or Master’s in CS/DS/Statistics/Math/Engineering

Tools

AWS
LangChain
LangGraph
Vector databases

Job description

Job Description

As a Data Scientist, you will be a core member of the Data Science and AI team, working on challenging and strategic business problems to develop effective, data-driven solutions that enable the delivery of quality and affordable housing.

You will work closely with technical and business stakeholders to identify opportunities, solve complex problems, develop and deploy advanced analytical and AI solutions, and ensure that the solutions delivered are accurate, scalable, efficient, and aligned with business objectives.

Key Responsibilities

Contribute as a core member of strategic and high-impact Data Science and AI projects, applying advanced analytical and machine learning techniques to solve complex business problems.

Participate in problem-solving exercises, including root cause analysis, structured problem-solving, MECE frameworks, and other appropriate methodologies.

Support the selection, development, validation, implementation, and deployment of machine learning and AI algorithms.

Take ownership of the correctness, efficiency, scalability, and integrity of data science solutions developed by the team.

Contribute to the team's technical workflows, processes, methodologies, and best practices.

Review and provide constructive feedback on peers' work to maintain high technical standards and ensure adherence to best practices.

Collaborate closely with IT, data engineering, system project teams, and business units to understand requirements and co-create high-impact, business-focused solutions.

Translate business challenges into analytical and technical requirements and communicate data-driven insights effectively to stakeholders.

Develop and deploy end-to-end machine learning and AI solutions using MLOps practices and cloud platforms such as AWS.

Apply advanced techniques in deep learning, statistical modelling, optimization, multi-criteria decision analysis, and AI engineering.

Work with modern AI technologies, including Large Language Models (LLMs), neural embeddings, Generative AI, vector databases, LangChain, LangGraph, and related AI frameworks.

Contribute to data engineering activities supporting data science, including ELT processes, structured data transformation, database technologies, and data preparation.

Stay current with emerging developments in Data Science, AI, Machine Learning, and Generative AI, and continuously enhance technical capabilities and team practices.

Present findings, models, visualizations, and recommendations clearly to both technical and non-technical stakeholders.

Qualifications & Requirements

5+ years of professional experience in Data Science, Machine Learning, AI, or a closely related field with a reputable organization.

Bachelor's or master's degree in computer science, Data Science, Statistics, Mathematics, Engineering, or another relevant quantitative discipline.

Strong problem-solving capabilities with proficiency in structured approaches such as MECE, root cause analysis, and hypothesis-driven problem solving.

Strong understanding of MLOps principles and hands-on experience in end-to-end model development, deployment, monitoring, and lifecycle management.

Strong experience deploying machine learning and AI solutions in cloud environments, particularly AWS.

Strong theoretical and practical knowledge of machine learning and deep learning algorithms and architectures, including areas such as:

  • Transformer architectures
  • Reinforcement Learning
  • Statistical modelling
  • Optimization techniques
  • Multi-criteria decision analysis

Hands-on experience in AI Engineering, including:

  • Large Language Models (LLMs)
  • Generative AI
  • Neural embeddings
  • Vector databases
  • LangChain and/or LangGraph
  • Development of AI/GenAI applications and systems

Experience with data engineering for Data Science, including ELT concepts, structured data transformation, database technologies, and data preparation.

Strong programming and development skills in:

  • Python and relevant data science/ML frameworks
  • R
  • SQL
  • Shell scripting

Strong communication and stakeholder management skills, with the ability to work effectively with both technical and business teams.

Excellent data visualization and presentation skills, with the ability to communicate complex analytical findings clearly.

Strong team player with the ability to collaborate, review peer work, share knowledge, and contribute to continuous improvement.

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