PH - Machine Learning Consultant

5 days ago


Taguig, National Capital Region, Philippines Thinking Machines Data Science Full time

Explore With UsAre you looking to grow your career and make a meaningful impact? Interested to tackle new challenges? We're looking for people like youThe Proactive Hiring process is specifically designed for applicants who are seeking job opportunities at a later date. Applying for roles under Proactive Hiring means that you are applying for roles without immediate vacancies. However, we anticipate that we will need to hire for these roles in the next few months.Here's what you can expect when applying for a Proactive Hiring role:Merit-based Evaluation: Your application will still undergo ‌ our standard skills- and values-based assessments.Longer Lead Time: Turnaround time for processing Proactive Hiring applications may take longer than for Immediate Hiring applications, making it suitable for folks open to exploring opportunitiesReserved Slot as a Priority Candidate: A successful application will result in a slot as one of our top candidates for the role. This is not yet a formal job offer, but expresses our intent to extend an offer to you once a vacancy becomes available.First In Line for the Job: Once there is an active vacancy for the role, you will be one of the first people we contact and to whom we extend an official offerAt Thinking Machines, we treat all our candidates with great care and fairness while ensuring we stay ahead of the curve to anticipate our clients' needs. Working at Thinking MachinesThinking Machines is a technology consultancy building AI & data platforms to solve high-impact problems for our clients. Our vision is a future where data-driven decision-making is a norm and where AI is used to support humans in making excellent decisions. To do that, we create data cultures, one organization at a time.We're a company made up of intellectually curious, civic-minded, forever-learning individuals. We believe that great data science products are built with care for people, and that the best way to drive inclusive innovation is to start with a diverse team.Our field of work is incredibly dynamic, so we want to work with people who are committed to growing with us. We want to hire people who can demonstrate an ability to learn, then provide them with personalized coaching, growth opportunities, and a great working environment to get them to world-class.Role DescriptionThis is an opportunity for someone with a strong portfolio of work in machine learning and analytics to do great work in the company of a high-performance team. This job demands creativity, critical thinking, and a focus on delivering excellent work. You'll be expected to effectively handle projects from day one, and will be provided with effective guidance as you learn and implement machine learning methods for our clients and internal products.We're a technology consultancy with constantly evolving responsibilities, and the following is an incomplete but representative list of things you can expect to be doing:Scoping work on ML/analytics use cases: working with clients to understand their needs, and designing quantitative solutions to address those needs whether through machine learning, analytics, data pipelines and visualization, or other methodsAcquiring, cleaning, and evaluating the integrity of datasets: Let's be real, this is a tricky and satisfying 25% of the job. We use Google Cloud Platform for many components of our machine learning workflow.Exploring data and its sources: looking for patterns and signals in the data, identifying important fields, gleaning insights, and discerning whether machine learning can even apply to the problemDeveloping and evaluating machine learning models: feature engineering, experimenting with different model types, choosing the right metrics to measure performance, analysis of model performance and results (e.g., feature importance, model stability, performance across different groups), etc.Understanding model design and decisions: explaining how models work under the hood and how a model arrived at a certain prediction, choosing the right model family, and justifying accuracy tradeoffs for faster performanceImplementation strategy and application: recommend ways that the client can use the model outputs in their business, often involving collaboration with both the client and other Thinking Machines teammates (e.g., Strategists, Business Intelligence Analysts).Research and keeping up with the tech space: reading through published ML papers, and implementing improved versions of their models in new domainsSenior ML Consultants are also expected to assume technical leadership roles. On projects, they must be able to plan out roadmaps for ML/analytics solutions delivery, own a project's ML/analytics components, devise experiments/optimizations, and serve as point-person for client interactions regarding these components. They must be able to offer sound technical guidance to junior staffers and the rest of the project team members.As part of the Analytics Consulting team, you'll work with clients across industries to analyze and visualize data, delivering insights through the most suitable methods that enables them to make smarter and informed decisions—whether through EDA, statistics, ML, geospatial modeling, or GenAI.RequirementsWe're looking for someone who meets the following profile:Comfort with machine learning models - You have a demonstrated understanding of classic machine learning models for classification and regression (e.g. decision trees, ensemble models, SVMs etc). Applicants who are aiming for more senior positions in this role must have advanced knowledge in at least one specific area. Here are some rough categories:Sequential Prediction Models (e.g. time series forecasting, LSTMs etc)Computer Vision (e.g. CNNs, SSDs etc.)Geospatial Modeling (e.g., GeoPandas, GIS, Clay, UNet, etc.)LaGenAI or Language Models (e.g. GPT, Gemini, Claude, prompt engineering, RAG, word embeddings, text representations, etc.)Comfort with code - You can use your local machine to scrape, load, and parse through moderately large datasets without much handholding.Clear communication - We help clients get the most out of their data, so we diagnose their needs effectively, do the analysis correctly, and communicate our findings in a way that leads to understanding and action. At a minimum, you need to have the ability to articulate your points logically and have to be willing to learn this skill set as you grow with us.Application-conscious approach to solutions - You should be able to design and develop solutions that will have a clear potential impact on clients' work, and have a vision on how they might use it in real-world applications.Productive curiosity - You ask a lot of the right questions. Find a surprising correlation? Dig into the raw data to validate it.Enjoys both teaching and learning - We believe that data science is an incredible field to be in today. There's a huge amount of new material to learn, we all want to learn it, and we're looking for someone who wants to contribute to everyone's growth. As part of our job interview, we'll be asking you to read and summarize a machine-learning paper for us.Strong sense of initiative—You're always looking for ways to be useful and you hate having nothing to do.Social intelligence— It's extremely important that you work well with others and thrive in an environment with lots of teamwork and interpersonal interaction.Qualifications and CompetenciesAt least 3 years experience in data science, analytics or other related fieldsUndergraduate/Graduate degrees in Computer Science, Physics, Mathematics, Statistics, or any related fieldStrong fundamental statistics skills, and linear algebra handling skillsStrong quantitative analysis skillsFamiliarity with statistical programming languages like Python, or RBonus Points (You're not expected to have all the below qualifications but competitive candidates have at least two):Knowing the scientific Python toolkit, and Deep Learning Frameworks (i.e. PyTorch, TensorFlow, Keras, etc.)Publications in peer-reviewed journals and conferencesComfort with cloud platforms (AWS, GCP, or Azure) for training machine learning models on >10GB datasetsExperience in creating compelling data visualizations and dashboards using tools like Tableau, Power BI, Looker, Matplotlib, or Seaborn for communicating insights to stakeholdersDomain expertise in a non-tech field. Are you an expert in energy, finance, insurance? Bring something to the table that we don't yet haveFluency with open-source frameworks and good software engineering practicesBenefits and PerksWe offer the following compensation and benefits:Competitive salary — the compensation amount is positively correlated with the difficulty of the job, relevant experience, fit, and skill factors.Hybrid Set-Up — Hybrid-remote means employees are required to come in an average of two days a week for client engagements and internal in-person days intended for collaboration, socials, and strategic planning.Individual professional development budget — an annual budget for conferences, training courses, books, and software is available to sharpen your skills and build new ones to help you grow in your role.Full health benefits — generous health insurance package upon hiring, with options to include dependents.Apprenticeship and yearly performance reviews with the leadership team to discuss career and personal goals, job progress and any questions and concerns.



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