Machine Learning Engineer Language
New Yesterday
The Trudenty Trust Network provides personalised consumer fraud risk intelligence for fraud prevention across the commerce and payments ecosystem, starting with first-party and APP fraud prevention.
We are at an exciting point in our journey, as we go to market and drive growth of The Trudenty Trust Network. This next chapter of our story is one in which we will drive impact across the commerce ecosystem, create to stay at the leading edge of innovation across the industry whilst building material value for our team (inclusive of shareholders).
defined by grit, resilience, creativity in problem solving, intelligence and mastery of our domains. We are a hybrid team, with an office in Central London and work as a mix from office and home.
We are looking for a senior Machine Learning Engineer with a spike in data engineering and maintaining real-time data pipelines. You will work with our Product & Engineering team along the end-to-end algorithm lifecycle to advance the Trudenty Trust Network.
Data Engineering
Develop and maintain real-time data pipelines for processing large-scale data
Ensure data quality and integrity in all stages of the data lifecycle
Develop and maintain ETL processes for data ingestion and processing
Algorithm Development, Model Training and Optimisation
Design, develop, and implement advanced machine learning algorithms for fraud prevention and user personalization
Train and fine-tune machine learning models using relevant datasets to achieve optimal performance
Data Mining & Analysis
Apply data mining techniques such as clustering, classification, regression, and anomaly detection to discover patterns and trends in large datasets.
Analyze and preprocess large datasets to extract meaningful insights and features for model training
Conduct code reviews to ensure high-quality, scalable, and maintainable code
including the founders, sales, data scientists, engineers, and product to understand business requirements and implement effective solutions
Stay abreast of the latest advancements in fraud prevention and machine learning and contribute to the exploration and integration of innovative techniques
You will have proven experience with data science and a track record of implementing fraud prevention, credit scoring or personalization algorithms. Setting up and maintaining real data pipelines to feed your ML models is light work for you, and you would have been as comfortable if this JD was for a ‘data engineer’.
You are agile, comfortable with ambiguity and are a creative thinker who can apply research and past experiences to new problems.
Bachelor's or Master's degree in Computer Science, Data Science, or a related field.
~7+ years of professional experience in a relevant area like fraud prevention or credit scoring
Machine Learning Expertise:
Strong understanding of machine learning algorithms and their practical applications, particularly in fraud prevention and user personalization.
Experience designing, developing, and implementing advanced machine learning models.
Familiarity with machine learning frameworks such as TensorFlow, PyTorch, and scikit-learn.
Data Engineering Skills:
Proficiency in developing and maintaining real-time data pipelines for processing large-scale data.
Experience with ETL processes for data ingestion and processing.
Proficiency in Python and SQL.
Experience with big data technologies like Apache Hadoop and Apache Spark.
Familiarity with real-time data processing frameworks such as Apache Kafka or Flink.
MLOps & Deployment:
Experience deploying and maintaining large-scale ML inference pipelines into production environments.
Familiarity with AWS cloud platform (experience with GCP or Azure is a plus).
Experience monitoring and optimizing model performance in production settings.
Programming Languages:
Strong coding skills in Python and SQL.
js, JavaScript (JS), and TypeScript (TS) is a plus.
Data Manipulation & Analysis:
Proficient in data manipulation and analysis using tools like Pandas, NumPy, and Jupyter Notebooks.
Experience with data visualization tools such as Matplotlib, Seaborn, or Tableau to communicate insights effectively.
Cash: Depends on experience
Impact & Exposure: Work at the leading edge of innovation building our machine-learning powered smart contracts for fraud prevention
Growth: An opportunity to wear many hats, and grow into a role you can inform
Hybrid work: Work from office 3 days a week, remote work rest of the week. Additional flexibility to work remotely 12 weeks a year
A 60min technical problem solving interview, alongside your potential ML colleague (with potential take home problem to solve)
Employment type Full-time
Job function Engineering and Information Technology
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- Location:
- London
- Job Type:
- FullTime
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