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Data Scientist

Job Summary:

Square Enix is a leading publisher of entertainment content, known for iconic digital game franchises such as the Final Fantasy series, Kingdom Hearts, Dragon Quest, NieR, Life is Strange, and Just Cause. Our mission is to create and deliver experiences that resonate deeply with the hearts and minds of our players.

We are seeking a passionate and driven Data Scientist to join our dynamic team. The ideal candidate should possess a strong interest in analytics, machine learning, artificial intelligence, and project management within the AI domain. This role will focus on, but is not limited to, the following areas:

  • Machine learning /statistics-based applications for marketing, such as recommender systems and sales modeling
  • Leveraging generative AI to enhance work efficiency
  • Facilitating the success of AI/ML projects via project management, cross-team collaboration and fostering internal partnerships

A key responsibility in this role will be to initiate and oversee AI/ML projects from conception to completion. You will need to accurately assess business needs, make strategic decisions on whether to develop in-house solutions, utilize existing internal tools, or explore external options. Once a project is underway, you will design proof-of-concept (PoC) solutions, evaluate their effectiveness, and guide them to full production implementation.

In this position, you will collaborate closely with data scientists, machine learning engineers, and AI experts both within and outside the team. Additionally, you will work alongside business stakeholders to ensure AI solutions meet their objectives and deliver measurable value.

Key Deliverables:

  • Develop machine learning applications, such as recommender systems and marketing ROI optimiser.
  • Leverage generative AI technologies to improve work efficiency and streamline processes across the organization.
  • Facilitate cross-team collaboration on AI projects, building strong internal partnerships to drive innovation and project success.
  • Initiate and manage AI projects from start to finish, including the accurate assessment of business needs and strategic decision-making (build, buy, or reuse).
  • Design and implement proof-of-concept (PoC) AI/ML solutions, evaluating their impact and effectiveness to guide them into production.
  • Collaborate with data scientists, machine learning engineers, and AI experts, both within the team and externally, to ensure high-quality AI solutions.
  • Work closely with business stakeholders to ensure AI/ML systems align with business objectives and deliver measurable value.
  • Assess data needs and engineering requirements, working closely with data scientists, engineers, and other technical teams to define data sources, models, and infrastructure requirements.
  • Onboard third-party vendors or partners as needed, managing relationships, and ensuring adherence to project requirements and timelines.
  • Maintain awareness of industry trends and emerging technologies, applying them where appropriate to drive business outcomes.
  • Performance Measures: Project delivery, execution, adherence to project requirements and timelines, project alignment with business objectives and stakeholder satisfaction, and reliability and quality of recommended solutions, ongoing demand and adoption rate of AI-powered projects, contribution to thought leadership around the organization.

Key Stakeholders:

Analytics, IT, Legal, Community & Service, Digital Channels, Intelligence

Knowledge & Experience:

Essential:

  • Proven experience as a Data Scientist, Data Analyst or Product Engineer.
  • Experience with the management of ML code base and experimentation result in an organized and efficient manner
  • Experience with cloud platforms and technologies for deploying and managing machine learning models at scale, such as AWS, Azure, or Google Cloud Platform
  • Proficiency in data analysis, data mining and programming languages, preferably SQL and Python.
  • Having worked with TensorFlow, PyTorch or scikit-learn.
  • Strong understanding of machine learning algorithms, AI technologies, and predictive modeling techniques, with the ability to translate business needs into technical requirements
  • Experience defining and developing a new product or service within the data space

  • Desirable:
    Strong understanding of Generative AI tools and APIs preferred
  • Working knowledge of methodologies used in recommender system such as Collaborative Filtering, Content Based Recommendation, Matrix Factorization a strong plus
  • Practical experience in ML ops, such as Python packaging, Docker/Kubernetes, CI/CD, deployment and monitoring of ML models’ performance a strong plus

Our goal at Square Enix is to hire, retain, develop and promote the best talent, regardless of age, gender, race, religious, belief, sexual orientation or physical ability.

Our pledge to D&I

At Square Enix we believe in the importance of being a diverse and global company, and we stand firmly together against any forms of injustice, intolerance, harassment or discrimination. In our effort to create a truly diverse workforce, we pledge to continue to raise awareness in every step of the employee experience, from recruitment to promotions to ensure equal opportunities for all. One of our goals is to champion diversity in games and at work and work together to inspire real change.

Learning and education around D&I will be a key element for us to continue to grow as an organization. With unconscious bias training, D&I workshops and a variety of initiatives to give our employees the opportunity to be heard and be part of that change to achieve real equality. We need all our efforts to continue to build our culture of inclusion and equality.

We are also proud to partner with UKIE's Raise the Game pledge, BAME in Games and Women in Games, to name a few.

Hybrid Working Policy

Square Enix is pleased to be an employer that offers flexibility within the workplace.

We have a hybrid working policy which allows employees to work from the comfort of their home, three days per week, and in our amazing Blackfriars office for the other two.

Or, if being in the Office is your preference, you can choose three days working from our office and two days working from home. The choice is yours!

Square Enix Glassdoor Company Review
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CEO of Square Enix
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Takashi Kiryu
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Average salary estimate

$100000 / YEARLY (est.)
min
max
$80000K
$120000K

If an employer mentions a salary or salary range on their job, we display it as an "Employer Estimate". If a job has no salary data, Rise displays an estimate if available.

What You Should Know About Data Scientist, Square Enix

Are you ready to dive into an exciting opportunity as a Data Scientist at Square Enix? Join one of the most iconic names in the gaming industry, known for legendary franchises like Final Fantasy and Kingdom Hearts. In this role, you’ll blend your passion for data with your innovative mindset to create machine learning applications and champion AI solutions that enhance marketing strategies and improve business efficiency. As a vital member of our dynamic team, you'll collaborate with brilliant minds in data science and AI, overseeing projects from inception to deployment, while closely working with various stakeholders to ensure our data-driven solutions hit the mark. Your expertise will help shape the future of entertainment, leveraging cutting-edge technologies and methodologies. Whether it’s developing recommender systems or managing AI project lifecycles, you’ll play a pivotal role in delivering measurable value to our players and the organization. Plus, with our commitment to diversity and inclusion, and a flexible hybrid working policy, you’ll find a workplace that values your contributions and supports your personal growth. If you’re driven by challenges and ready to make your mark at Square Enix, then we’d love to hear from you!

Frequently Asked Questions (FAQs) for Data Scientist Role at Square Enix
What are the main responsibilities of a Data Scientist at Square Enix?

As a Data Scientist at Square Enix, your primary responsibilities include developing machine learning applications such as recommender systems and marketing optimizers. You'll initiate and manage AI/ML projects from conception to completion, assess business needs, and collaborate with cross-departmental teams to deliver innovative AI solutions that align with business objectives.

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What qualifications are needed to apply for the Data Scientist position at Square Enix?

Applicants for the Data Scientist role at Square Enix should possess experience as a Data Scientist or similar roles, strong proficiency in programming languages like SQL and Python, and a solid understanding of machine learning algorithms. Familiarity with cloud platforms such as AWS or Google Cloud and tools like TensorFlow is highly desirable.

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How does the Data Scientist role at Square Enix leverage generative AI?

In the Data Scientist position at Square Enix, you will leverage generative AI technologies to enhance workflow efficiency and streamline operations across the organization. This entails employing cutting-edge automation and AI methodologies that optimize project outcomes and drive innovation in game development and marketing efforts.

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What kind of projects will a Data Scientist lead at Square Enix?

As a Data Scientist at Square Enix, you'll lead projects focused on machine learning applications in marketing, such as sales modeling and recommender systems. Additionally, you'll initiate AI/ML projects by designing proof-of-concept solutions, evaluating their effectiveness, and overseeing their transition to full-scale production.

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What is the work culture like for a Data Scientist at Square Enix?

Square Enix fosters a collaborative and inclusive work environment for Data Scientists. The company's commitment to diversity and hybrid working policies promotes flexibility and a balanced work-life, allowing you to engage with the creative community while pushing the boundaries of data-driven solutions in the gaming industry.

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Common Interview Questions for Data Scientist
Can you describe your experience with machine learning models relevant to the Data Scientist role at Square Enix?

When discussing your experience, emphasize specific projects where you successfully implemented machine learning models. Be prepared to describe the algorithms used, the business problem they addressed, and the impact they had on decision-making or efficiency.

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How do you prioritize and manage multiple AI/ML projects effectively?

Illustrate your project management skills by explaining how you assess project importance based on business needs and timelines. Discuss tools you use for project tracking and how you communicate with teams to keep everyone aligned and informed.

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What machine learning algorithms do you find most effective in building recommender systems?

Talk about your familiarity with algorithms such as collaborative filtering and content-based filtering. Provide examples of when you’ve implemented these algorithms and the results you achieved, explaining your reasoning for choosing them based on the project goals.

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How do you collaborate with stakeholders to understand their business needs for AI projects?

Highlight your experience in conducting interviews or workshops with stakeholders to gather insights about their goals. Discuss how you translate those needs into technical requirements and ensure that all parties are involved throughout the project lifecycle.

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Explain a time when you faced a challenge in an AI project. How did you overcome it?

Share a specific challenge, be it technical or related to team dynamics, and detail the steps you took to address it. Focus on problem-solving skills, adaptability, and how you rallied your team or utilized data insights to find a resolution.

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What tools and technologies do you use for deploying machine learning models?

Discuss your experience with deployment tools and cloud platforms like AWS, Google Cloud, or Azure. Be specific about the technologies you’ve utilized, such as Docker for containerization or CI/CD pipelines to streamline the deployment process.

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How do you stay updated on industry trends in data science and machine learning?

Mention your regular engagements with reputable sources, attending conferences, participating in online communities, or enrolling in courses. Highlight how this ongoing education has enabled you to incorporate innovative strategies in your work.

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Can you give an example of how you utilized generative AI in past projects?

Provide a real-life example where you implemented generative AI technologies. Explain the context, objectives, and outcomes, showcasing how this technology improved processes or contributed to project success.

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What role does cross-team collaboration play in the success of AI projects?

Emphasize the importance of working across departments to gather diverse insights and expertise. Discuss how you ensure effective communication and collaboration, and share instances of projects that benefited from this teamwork.

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What measures do you take to ensure the quality of your machine learning models?

Talk about your process for validating model performance, including evaluating accuracy, conducting A/B tests, and gathering user feedback. Describe the adjustments you make based on these evaluations to enhance model reliability and accuracy.

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By giving rise to new expressions and ideas and creating experiences never encountered before, we will continue to deliver content and services that surpass the expectations of our customers. We believe that the value of our company and brand lies...

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Full-time, hybrid
DATE POSTED
December 23, 2024

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